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Paper Citation Record · LEDGER

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE

As of 9 August 2026, this Paper Citation Record lists 100 of 104 outbound references and 0 inbound Pith citation observations for arXiv:2607.11705.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2607.11705 v1

Coverage vector

measured 100 of 104 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-07-14T03:44:36.121772Z

measured 100 of 100 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-09T06:31:02.800959+00:00

measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links

measured 0 of 1 external citation measurements

A source-named dated measurement, never combined with another source.

Source: cited_works

Reference resolution

100 of 104 outbound references displayed

  • verified exact0
  • verified fuzzy0
  • unresolved100
  • parse uncertain0
  • malformed identifier0
  • metadata mismatch0

External citation measurements

No source-named external measurement is stored.

Outbound references

Observation 4a71926a-12b6-48d9-8c58-7d96827b10cf · outbound

This paper cites Minimal data, maximum clarity: A heuristic for explaining optimization,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Minimal data, maximum clarity: A heuristic for explaining optimization,

Reference 1

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Observation ea6cd312-0391-481a-ab67-c418923b71ea · outbound

This paper cites Moot: a repository of many multi-objective optimiza- tion tasks,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Moot: a repository of many multi-objective optimiza- tion tasks,

Reference 2

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:893f907e49a5964beeb19407a13dcb02a3146f9ec616d113e7ba75a8c5c7d656

Observation 89a6f547-ffba-4904-9670-840d954c8580 · outbound

This paper cites Promisetune: Unveiling causally promising and explainable configuration tuning,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Promisetune: Unveiling causally promising and explainable configuration tuning,

Reference 3

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:247a1a6aae04b67be2c4710fbc144816aaaa5b56d8fdad8225424b84e8847e44

Observation 83d70118-137f-43d6-a671-c757b75068b9 · outbound

This paper cites Can large language models improve se active learning via warm-starts?.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Can large language models improve se active learning via warm-starts?

Reference 4

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:577c869431619a782b8b122c7bf7ce1d763cd6ba9f0cf7db4833f05ed89107af

Observation d0d8b6da-fbac-4b84-9b1f-bf92d8cb09f9 · outbound

This paper cites Less Noise, More Signal: the DRR Effect for Better Optimizations of a Range of SE Tasks.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Less Noise, More Signal: the DRR Effect for Better Optimizations of a Range of SE Tasks

Reference 5

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:dfb205dba06e9104cdbec132b0c6a904e9e4957303a6043f932bcca21fb8231e

Observation d42b2ac5-476d-4006-b228-e89bb0d305d6 · outbound

This paper cites Learning from very little data: On the value of landscape analysis for predicting software project health,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Learning from very little data: On the value of landscape analysis for predicting software project health,

Reference 6

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:10c170ab57e20a9a3efb1e00bbee9aff335712130c488ecc0936956f711e0fbe

Observation 0101af79-dc0b-420d-8b09-2c9495b53f1a · outbound

This paper cites Finding faster configurations using flash,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Finding faster configurations using flash,

Reference 7

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:395792991f650e917cfad6b5898192652d7e9283a5f591939c4cdb285edc484e

Observation a21a9b8d-0e03-49e7-a8af-74f11d2d8831 · outbound

This paper cites Russell and P.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Russell and P

Reference 8

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:87c4874fc03728c400c72db7d39f627b39535e7690052bdbd53478e893e76240

Observation 20663359-07eb-44c4-a39b-8fa2759e19e6 · outbound

This paper cites A theoretical and empirical study of search-based testing: Local, global, and hybrid search,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE A theoretical and empirical study of search-based testing: Local, global, and hybrid search,

Reference 9

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:65a805c63dabd80d32258b477bd0824d714796fcbbd5e06684690e8d84064a2c

Observation 16f0c163-d1bb-456a-9f75-0f65a5d22855 · outbound

This paper cites Search-based software engineering: Trends, techniques and applications,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Search-based software engineering: Trends, techniques and applications,

Reference 10

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:a9c862f1b9a67fa6127060225422d26272c4c77edeaf652390a20d4d0bfbc297

Observation b032bc2d-f246-4e72-8943-16e8b5e2deb0 · outbound

This paper cites Pyart: Python api recommendation in real-time,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Pyart: Python api recommendation in real-time,

Reference 11

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Observation 11f0ccf0-a153-40e6-b978-744bc9dd04b6 · outbound

This paper cites Optimization by simulated annealing,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Optimization by simulated annealing,

Reference 12

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Observation 68fba568-8fca-4da3-b606-3150448814cd · outbound

This paper cites The current state and future of search based software engineering,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE The current state and future of search based software engineering,

Reference 13

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:7610e01556f08b93d1144b429a186d2929e794a1456000cab37bb994d183a41b

Observation dac7adbf-f2fe-4d83-9f1c-e5d52324e081 · outbound

This paper cites Search-based fault local- ization,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Search-based fault local- ization,

Reference 14

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:dd3b7fef97275526f2f435b759ef16b1524e90968f946be6451b0e48bbcc4b2d

Observation 42cf1962-d739-48d7-9a21-be77b5c12dab · outbound

This paper cites Evolutionsstrategie,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Evolutionsstrategie,

Reference 15

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:b501fc2826bf79f1bb15a05d2c7f5fb475a209ca91994195c8a407e9c505c880

Observation 7277586b-94a0-415f-8876-56ed6782b76d · outbound

This paper cites Test suite generation with the many independent objective (mio) algorithm,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Test suite generation with the many independent objective (mio) algorithm,

Reference 16

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:882078c5fb648adde307dff55528fee2cb8821c3b96c63efd37842ae00893bd5

Observation 05359d22-34c1-4d8d-b3b9-83d2b575e38a · outbound

This paper cites Iterated local search,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Iterated local search,

Reference 17

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:76ff90ee2b79d85d349c6fefca1da79ea7863872633e29f753c3475c84546b73

Observation 2292415f-38cd-4eda-959c-0e115ca4017a · outbound

This paper cites A genetic programming based iterated local search for software project scheduling,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE A genetic programming based iterated local search for software project scheduling,

Reference 18

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:ba7b0c310b4e715d42230f6f99b431e9b89274e6a2e04ba36581cdac5490318d

Observation e58f4676-5bd8-4dc8-bc8d-459225d7c21a · outbound

This paper cites Tabu search—part i,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Tabu search—part i,

Reference 19

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:1fc491059b55927750f77ee54730b55cdcb3c85f3464332a01a1dcf7e457648b

Observation f02ff132-71f2-4319-9a1c-7ff13340ad93 · outbound

This paper cites A tabu search algorithm for structural software testing,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE A tabu search algorithm for structural software testing,

Reference 20

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:36b27a7820250df14be1aa244c8a5c2e06e7a41519c9cb383ca639cfc66da7ee

Observation 8e83cc0f-bfc2-47b9-88be-66c92a3fcd67 · outbound

This paper cites Transfer learning for cross- company software defect prediction,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Transfer learning for cross- company software defect prediction,

Reference 21

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Observation 3237108e-42ad-4bbf-bc92-2b6107470781 · outbound

This paper cites How to “dodge.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE How to “dodge

Reference 22

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:1e715d29a7e36457754c2a84d52b29e7d2104aff83c9c60adb263eff9ebb27b6

Observation 9119e904-7999-401b-a23f-621b64fedf36 · outbound

This paper cites an unresolved cited work.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Unresolved cited work

Reference 23

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Observation c2f70f60-2d0c-4efa-908a-9a7122756749 · outbound

This paper cites Genprog: A generic method for automatic software repair,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Genprog: A generic method for automatic software repair,

Reference 24

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:04cb9b76f7804246175d53360310e36f18579f71b4611a57e73027ce8f597ac2

Observation 135cd72f-9901-4126-8ae2-a62621389c56 · outbound

This paper cites An empirical study of meta-and hyper-heuristic search for multi-objective release planning,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE An empirical study of meta-and hyper-heuristic search for multi-objective release planning,

Reference 25

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:d191f4af127af4355005c8f18249daa186e59dcf4703984c5b61be933b088271

Observation 0e969017-53db-4125-8b73-0ed4d4ccc11e · outbound

This paper cites From recombination of genes to the estimation of distributions i. binary parameters,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE From recombination of genes to the estimation of distributions i. binary parameters,

Reference 26

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:1694b6212a49c98c487e369ea6ee305e96a4b2b1b15b527ca95b30a331e09940

Observation 22700547-13e0-45a8-aa17-baca7c178f56 · outbound

This paper cites Test data generation for mutation testing based on markov chain usage model and estimation of distribution algorithm,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Test data generation for mutation testing based on markov chain usage model and estimation of distribution algorithm,

Reference 27

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:fdada4dfc395de54e1d6d9faca2863a42c406f075d0c57bf546850a5b1a3bb70

Observation da20b2c2-9f0b-41f5-8855-e4b289c0339e · outbound

This paper cites Particle swarm optimization,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Particle swarm optimization,

Reference 28

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:73ffd50639af4afadc1b927412638411fe6e4dcebf9091c77444230a43a873db

Observation 1910308d-1529-4522-bded-ed3cc483b11e · outbound

This paper cites Learning seed-adaptive mutation strategies for greybox fuzzing,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Learning seed-adaptive mutation strategies for greybox fuzzing,

Reference 29

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:4f77b447cd6badbb89fca7203c7016117021d4a199035b272d75d58922677cd5

Observation 779004dc-912e-4fbc-8c64-243b5d64bc16 · outbound

This paper cites Differential evolution–a simple and efficient heuristic for global optimization over continuous spaces,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Differential evolution–a simple and efficient heuristic for global optimization over continuous spaces,

Reference 30

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:ec439c7ab4e6760e4ee93bc145ef571a912b73a30f7e16b20edb66ef46a6e2c6

Observation 8202411b-3e61-4e8e-8f50-d2ad9c9e05ad · outbound

This paper cites Easy over hard: A case study on deep learning,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Easy over hard: A case study on deep learning,

Reference 31

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:bfc3506a091b7e822187b899a038ce6fddec19e0f8cb9cdd64bbb84a031f1815

Observation 83a9d22e-a525-4fcf-ab81-7cbeb33778d4 · outbound

This paper cites Sequential model-based optimization for general algorithm configuration,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Sequential model-based optimization for general algorithm configuration,

Reference 32

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:ce8af6f7196904b0f8d8f4cd25ba266bd092f695fe6a85dbe090b4fe4932769f

Observation 8bf7accf-f476-41cf-8967-8d1e93c5c75b · outbound

This paper cites How low can you go? the data-light SE challenge,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE How low can you go? the data-light SE challenge,

Reference 33

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:81fc05b3f6d17949d6a9babde6b2b6077e8bff613a346953ec3e4202f64cdc23

Observation b1a9081c-b741-4df2-ac99-d10d687dd2cd · outbound

This paper cites Algorithms for hyper-parameter optimization,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Algorithms for hyper-parameter optimization,

Reference 34

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:3a4ebb45cd4a56d0215a812bd430892ceb4f9e5e57695a0d8ccf24de181225c2

Observation 48fc0607-e01e-4e73-9b70-0f846b5ceda5 · outbound

This paper cites Efficient compiler autotuning via bayesian optimization,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Efficient compiler autotuning via bayesian optimization,

Reference 35

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:bc43f612e5913b044d64e6495baa9d0db75a2e850681a5d04715e0fc1d05f44f

Observation 6304445a-9fc6-4a1d-b08e-253500ee1c77 · outbound

This paper cites “sampling.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE “sampling

Reference 36

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:1891398bc2fb6325ead939384fc2efd9e91bc38370f706c95d16977a22b2588a

Observation 6606aeea-6d29-49f3-a4ab-3bafbc833ff2 · outbound

This paper cites Accuracy can lie: On the impact of surrogate model in configuration tuning,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Accuracy can lie: On the impact of surrogate model in configuration tuning,

Reference 37

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Observation 5250f527-9552-4652-b75a-872d0c28f416 · outbound

This paper cites Random search for hyper-parameter opti- mization.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Random search for hyper-parameter opti- mization

Reference 38

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:512635f4d91a6d2aff07f95cb8a08adee552e11abbc41f672a686e76218f90a0

Observation aad304e7-1c0d-471f-85df-eabd12c7c3b9 · outbound

This paper cites A fast and elitist multiobjective genetic algorithm: Nsga-ii,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE A fast and elitist multiobjective genetic algorithm: Nsga-ii,

Reference 39

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Observation bbeb0508-1b08-4af5-90b4-197f19cf7db8 · outbound

This paper cites Many-objective software remodularization using nsga-iii,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Many-objective software remodularization using nsga-iii,

Reference 40

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Observation 6e15cbcf-6eda-483d-ae93-626589aa8bdd · outbound

This paper cites A multi-objective test data generation approach for mutation testing of feature models,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE A multi-objective test data generation approach for mutation testing of feature models,

Reference 41

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Observation 356aad16-2fbf-4124-88da-d27f369aefbb · outbound

This paper cites Spea2: Improving the strength pareto evolutionary algorithm,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Spea2: Improving the strength pareto evolutionary algorithm,

Reference 42

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Observation d9ecb7a1-1899-46e0-8e0c-eca72c13b31e · outbound

This paper cites Sms-emoa: Multiobjective selection based on dominated hypervolume,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Sms-emoa: Multiobjective selection based on dominated hypervolume,

Reference 43

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Observation a8106113-6448-4282-b650-1ba36ebf378e · outbound

This paper cites An empirical study on pareto based multi-objective feature selection for software defect prediction,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE An empirical study on pareto based multi-objective feature selection for software defect prediction,

Reference 44

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:19eee67e47fd84b45756d8e399e3908d50fc8658acfcad4da41764564d5e5702

Observation c47384ef-b423-4edf-8cc0-2eb6389150ab · outbound

This paper cites Moea/d: A multiobjective evolutionary algorithm based on decomposition,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Moea/d: A multiobjective evolutionary algorithm based on decomposition,

Reference 45

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:07ad197a6d4f23b8ce01ac57e64b1085873ab7eb714309dafaaeda75a5dabb78

Observation 93e98a5c-44e3-40b9-9374-1fd5cc25a4a5 · outbound

This paper cites Compiler auto-tuning via critical flag selection,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Compiler auto-tuning via critical flag selection,

Reference 46

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:573c3f40701f4f58a2893b4310ef9cf8aa3eb70893a10882d5c122dde0289d54

Observation e7a9ec7b-dca3-49ec-a87a-2b90d082e0a4 · outbound

This paper cites Automatic database management system tuning through large-scale machine learn- ing,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Automatic database management system tuning through large-scale machine learn- ing,

Reference 47

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:4f571c082048e5a30c844c2865fa768738961ab57b581a86b3ca33d2e30d528c

Observation 25ab67bf-b074-456e-ad9d-3a278d94b2bb · outbound

This paper cites On the value of user preferences in search-based software engineering: A case study in software product lines,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE On the value of user preferences in search-based software engineering: A case study in software product lines,

Reference 48

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:fe4bd23e97417db44f92b910917999af4c36a18beb8d50e7554dc9ccfeba26e7

Observation 10c0548c-effe-4681-a5c9-b8cbf3380991 · outbound

This paper cites An end-to-end automatic cloud database tuning system using deep reinforcement learning,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE An end-to-end automatic cloud database tuning system using deep reinforcement learning,

Reference 49

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:3f635381824272baca8a975820b647df8d9154c2b7be2e3227d1d0815da19d7e

Observation b17d52f7-1a94-4857-a939-ef1e70f92780 · outbound

This paper cites Iterative generation of adversarial example for deep code models,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Iterative generation of adversarial example for deep code models,

Reference 50

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:addf84c7a7011c90bac401b4d8a4f32a496f609cd80fe7cea0a9294162fc8196

Observation 6628f77d-0387-47fb-a0cf-ed1b95057af9 · outbound

This paper cites No free lunch theorems for optimization,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE No free lunch theorems for optimization,

Reference 51

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:06ccc75b223cd05e3524e531e019679066c78c3bab4df5e0e73a5365e0c0c37d

Observation 8c52c74b-0572-4792-bceb-46fb66cd2698 · outbound

This paper cites Toward automated algorithm design: A survey and practical guide to meta- black-box-optimization,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Toward automated algorithm design: A survey and practical guide to meta- black-box-optimization,

Reference 52

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:b4c8fe566251275a11774d36403083d6c022acdabd0d39eab32a98e0a0aa8035

Observation d6f6e265-6ddc-45a6-80eb-f36cc2ac5706 · outbound

This paper cites How efficient is llm-generated code? a rigorous & high-standard benchmark,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE How efficient is llm-generated code? a rigorous & high-standard benchmark,

Reference 53

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:7c5781eb04f0b16d31c2a359b1f32f7e059ed7b549a4a14565c8790dc2ca9c10

Observation a10d6a91-0025-429f-9ddf-94d626dd855b · outbound

This paper cites Simpler hyperparameter optimization for software analytics: Why, how, when?.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Simpler hyperparameter optimization for software analytics: Why, how, when?

Reference 54

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:871c716bffe9b7839e800343a5671f963b23a5907693c90b827a756abf7656e8

Observation a5737340-ac4c-4283-ac7b-33b3c213bcc1 · outbound

This paper cites Analysing the fitness landscape of search-based software testing problems,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Analysing the fitness landscape of search-based software testing problems,

Reference 55

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:a3c92cbe752dcddd3afed18cbc688911abe1b59203edff0a56461827a623b4fb

Observation e9c70ace-ff79-4f65-bfc3-699e38920312 · outbound

This paper cites Causes and effects of fitness landscapes in unit test generation,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Causes and effects of fitness landscapes in unit test generation,

Reference 56

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:b89ae8ebb64d0f7e0838d5f5c922c4fed82ea1c97cdce45055c0ff48340d31f3

Observation 9b5757d4-d8ee-4229-a788-ea5761ec1a92 · outbound

This paper cites Large language models for software engi- neering: A systematic literature review,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Large language models for software engi- neering: A systematic literature review,

Reference 57

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:e698ad6c93b15aebe21345d93350be0e6e52ccd1dd4907f5ac1fa91b22ecbb81

Observation 7953f753-fae6-4fb4-9673-e29884a5eb41 · outbound

This paper cites The design, analysis and interpretation of reper- tory grids,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE The design, analysis and interpretation of reper- tory grids,

Reference 58

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:e3b97956dc58eba7cabe140aaea597802e7286db92dbf0f72d6b3a885e96a992

Observation 2dac029e-58bd-4baf-ade0-a75428e20baa · outbound

This paper cites Heuristics for systems engineering cost estimation,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Heuristics for systems engineering cost estimation,

Reference 59

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:ef5eff42e83bce57a6dfdebc54d858d18c8265d50f53d5dfd749d7d2fa27c05d

Observation d415e699-7725-440d-b693-4ee98307c351 · outbound

This paper cites Identifying self-admitted technical debts with jitterbug: A two-step approach,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Identifying self-admitted technical debts with jitterbug: A two-step approach,

Reference 60

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:7a6091a1b4aad763a7ffc6ebb2bbb372b1c2b8260f3a1dc1e87680ff62236903

Observation 807ab23b-0345-4883-a577-45389c9edf9d · outbound

This paper cites Data quality matters: A case study on data label correctness for security bug report prediction,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Data quality matters: A case study on data label correctness for security bug report prediction,

Reference 61

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:9c986226ddf0da4077b6171058ff7f47df9da2f5c65553bf496c47dd778d8ea9

Observation b93456ae-3537-4974-b81f-f31d3bb4e1d4 · outbound

This paper cites Detecting false alarms from automatic static analysis tools: How far are we?.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Detecting false alarms from automatic static analysis tools: How far are we?

Reference 62

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:5e927bc38c78a11e8583404d9ef69c30a54f59c6e3d7caba5ea8fda4b444a0fc

Observation e4c9d465-7c7d-4563-a38c-b2e94ce6ab35 · outbound

This paper cites Data quality: Some comments on the nasa software defect datasets,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Data quality: Some comments on the nasa software defect datasets,

Reference 63

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:b160e13b73ee797c53459a9f4ac989892e35431122b7134333d4d9be57d242e1

Observation d5617754-ee84-4356-805e-881bb5732116 · outbound

This paper cites A large-scale empirical study of just-in-time quality assurance,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE A large-scale empirical study of just-in-time quality assurance,

Reference 64

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:d9a0293996512c668592096d202044787511e59f39baad679f93c4b40050eb11

Observation b6d07957-b681-42af-b604-41464d22ada6 · outbound

This paper cites Can llms re- place manual annotation of software engineering artifacts?.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Can llms re- place manual annotation of software engineering artifacts?

Reference 65

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:b693c1bd27c9b9db03b4d0bf474c7be5ed3316dd4eded54c1f7453336863dfd6

Observation b07ba090-2eb7-47ad-a1c7-86abf457056f · outbound

This paper cites Hpobench: A collection of reproducible multi-fidelity benchmark problems for hpo,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Hpobench: A collection of reproducible multi-fidelity benchmark problems for hpo,

Reference 66

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:de1c6f7fe8732727ae20d07db851654b88c5273ff1bd877553dfb79bf2445489

Observation 79d4fb92-737b-42e4-a5c1-d813801459db · outbound

This paper cites Hebo: Pushing the limits of sample-efficient hyper-parameter optimisation,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Hebo: Pushing the limits of sample-efficient hyper-parameter optimisation,

Reference 67

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:5f6499f95609436366f9c446df6613b1c01ffb0c64b862a2e1e0bda81e4e6002

Observation 7b541729-7652-4ed6-8925-26c74cc3784e · outbound

This paper cites Scalable global optimization via local bayesian optimization,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Scalable global optimization via local bayesian optimization,

Reference 68

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:f29b2cef42e850f9c8940bd8886d7d13c168f52bd16086490b81418ac4b90e3b

Observation 6880fdb8-49d7-42c9-83a4-9c9f975bb947 · outbound

This paper cites Unicorn: Reasoning about configurable system performance through the lens of causality,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Unicorn: Reasoning about configurable system performance through the lens of causality,

Reference 69

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:97a98c619c62d29c4ad108695ed04e9241ba59f8d8ac6f7ff3ec474c3aa164bc

Observation 5b2a7cb5-5b8a-4a6e-85c7-28bb381ba44e · outbound

This paper cites Llamatune: sample-efficient dbms configuration tuning,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Llamatune: sample-efficient dbms configuration tuning,

Reference 70

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:b6e3b56e021bb3d5a6dbec7f37ab1e78bc023557cd0827dbd38e5bc473c22818

Observation 9a33d748-3543-47b1-a407-e4ba9b26c450 · outbound

This paper cites Available: https://doi.org/10.14778/3551793.3551844.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Available: https://doi.org/10.14778/3551793.3551844

Reference 71

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:8078ad8a87b14fcde7ee574d35b7ee509fad7bd117bf98303be5045950c47c9d

Observation 7b164406-4853-4356-bea1-9e5d6ef74709 · outbound

This paper cites Qtune: A query-aware database tuning system with deep reinforcement learning,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Qtune: A query-aware database tuning system with deep reinforcement learning,

Reference 72

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:da7a45c30f3e4923f5fe4615c180c436beaa02378221ff29688fc6470f0379e1

Observation 9b11ee3a-c4ca-4946-b319-1e1e0bd97235 · outbound

This paper cites Mathematical discoveries from program search with large language models,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Mathematical discoveries from program search with large language models,

Reference 73

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:5f0dd7b6b54520cc8c05576628c92737858ea96f4eec77314b9a067e84703f17

Observation 21f9e3c2-e278-46d0-9dfb-2726eaae7d1c · outbound

This paper cites Reevo: Large language models as hyper-heuristics with reflective evolution,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Reevo: Large language models as hyper-heuristics with reflective evolution,

Reference 74

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:523604ac249753ac3abcfadc88cd91b654666759ff7380285c60753423d59c7e

Observation 4bb52b56-e18d-4e01-8594-4d9be69ff5ea · outbound

This paper cites Genetic programming as a means for programming computers by natural selection,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Genetic programming as a means for programming computers by natural selection,

Reference 75

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:5d9a800abb824edd633353c8493d26097abe8385e58dce9b092d401346fc8459

Observation a257bf7c-37e4-47c4-a94b-6748df19c40b · outbound

This paper cites An evolutionary many-objective optimization algorithm using reference-point-based nondominated sorting approach, part i: solving problems with box constraints,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE An evolutionary many-objective optimization algorithm using reference-point-based nondominated sorting approach, part i: solving problems with box constraints,

Reference 76

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:4ef1eaf599cbcb364eb59606d35a87f651e36432c71e3738a51501f5eb5a11b1

Observation 1c2f3305-d383-4190-b1c5-6e85775c91ca · outbound

This paper cites The weights can be harmful: Pareto search versus weighted search in multi-objective search-based software engineering,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE The weights can be harmful: Pareto search versus weighted search in multi-objective search-based software engineering,

Reference 77

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:772ca68e45304e9cc90de7a5b98fb6f8f6174f80e9abcd00a6c2e07a2aa8b2f3

Observation 78ad3a55-dd8d-4d8d-8ebd-9529fcf66e91 · outbound

This paper cites Mmo: meta multi-objectivization for software configuration tuning,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Mmo: meta multi-objectivization for software configuration tuning,

Reference 78

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:f81ff29314453d3e5c8a52f4e022bd225d3eaaebba45b6620d41aafc5a5b2757

Observation 0852bacf-249b-4a9d-a78d-9f123355b1df · outbound

This paper cites Practical bayesian optimiza- tion of machine learning algorithms,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Practical bayesian optimiza- tion of machine learning algorithms,

Reference 79

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:c8f79a04b52f2320b8edeb8a162e34a3f038616dc3e1cd1d45469c87bee4a506

Observation e1962161-9984-4924-9da3-f1327066f9e0 · outbound

This paper cites Etune: Efficient con- figuration tuning for big-data software systems via configuration space reduction,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Etune: Efficient con- figuration tuning for big-data software systems via configuration space reduction,

Reference 80

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:a79b551d776273c5049a9a5bc8bf96a2d717d1500cdd326658a0a1a8837944eb

Observation bea21730-d860-443a-b449-f9e0ee07a777 · outbound

This paper cites Dually hierarchical drift adaptation for online configuration performance learning,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Dually hierarchical drift adaptation for online configuration performance learning,

Reference 81

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:5b59bbff7b90dcbe51ec9aed9e0de77c8160dd1592194289a4cf56cabdc99ce6

Observation 0d0bf3b0-449a-47c9-a837-7aea181c764a · outbound

This paper cites Cotune: Co-evolutionary configuration tuning,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Cotune: Co-evolutionary configuration tuning,

Reference 82

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:cf3283c94d7dac87b5cb8e7deb3ec59b6fd70ddaa39bef21b64be3d1f4321fcc

Observation 11598357-a295-4e24-a026-85d06c24d897 · outbound

This paper cites Compiler autotuning through multiple- phase learning,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Compiler autotuning through multiple- phase learning,

Reference 83

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:ebdd86c85b6386fae5062be2236727638b885af86e01a459982f00f4a26f452f

Observation d830e7dd-8fa2-43ed-837e-3b4cfe4be96c · outbound

This paper cites Unveiling many faces of surrogate models for configuration tuning: A fitness landscape analysis perspec- tive,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Unveiling many faces of surrogate models for configuration tuning: A fitness landscape analysis perspec- tive,

Reference 84

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:f2d1890811b489fd7318778dea3a49fd65bbcd7994a3c925627ee0a145f01d23

Observation 5b5ad87d-cd6d-4bf2-8649-130a6eebb0e7 · outbound

This paper cites Learning from delayed rewards,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Learning from delayed rewards,

Reference 85

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:315f7864c5d58b401b88466c5d5d5afcc78d5e9211473c0e3f5f5b624f0cb347

Observation fecda742-5ad0-4a0e-b0d8-47ab5db07782 · outbound

This paper cites Human-level control through deep reinforcement learning,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Human-level control through deep reinforcement learning,

Reference 86

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:9fcf1aa1e4dfc5f4e1c14a291bc4a7152fc7749b4cd30c7fe8d0e348d0d1554d

Observation fb8cd96e-66da-4654-8ad4-c2b6eb30697e · outbound

This paper cites Instance space analysis for algorithm testing: Methodology and software tools,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Instance space analysis for algorithm testing: Methodology and software tools,

Reference 87

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:e185ffc1473b2ed30422b28d0f63280e1875157aa8765a35ae1e701ce01b2193

Observation 5a075462-63f2-4a54-8194-7c924e4ce10b · outbound

This paper cites Instance space analysis of search-based software testing,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Instance space analysis of search-based software testing,

Reference 88

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:d89c0da91a11b481702b0b17d2715f3d209da8619dd6d92259c4136353477446

Observation e8d8ff3d-7a8d-49ae-a883-ec3443673d0f · outbound

This paper cites Bohb: Robust and efficient hyperparameter optimization at scale,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Bohb: Robust and efficient hyperparameter optimization at scale,

Reference 89

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:c6770b494534820adf1bd8a27b1a333f206d89bbbdb3c4a4d8b8021b6417a6ce

Observation 41174038-b2d0-4d91-af42-2d0865b81bda · outbound

This paper cites DEHB: Evolutionary hyberband for scalable, robust and efficient hyperparameter optimization,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE DEHB: Evolutionary hyberband for scalable, robust and efficient hyperparameter optimization,

Reference 90

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Observation cf2084e1-41fd-4344-910e-1dda105c6ec8 · outbound

This paper cites Using Large Language Models for Hyperparameter Optimization.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Using Large Language Models for Hyperparameter Optimization

Reference 91

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:62e01c081934bf07659fa88c795c70dd6c65be797dfb83cd2c4435ad0a1a665c

Observation b4b812c1-9203-4f39-93a1-3d7586a0cdee · outbound

This paper cites Language model crossover: Variation through few-shot prompting,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Language model crossover: Variation through few-shot prompting,

Reference 92

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Observation 956e5c97-a76f-4c11-b887-dad1c02d1cfb · outbound

This paper cites Yahpo gym-an efficient multi-objective multi-fidelity benchmark for hyperparameter optimization,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Yahpo gym-an efficient multi-objective multi-fidelity benchmark for hyperparameter optimization,

Reference 93

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:f9270f0c097afda19ebc5ca0b3aa1abd709564296ccd77553324ff28927d8edd

Observation e8707993-6ee3-4acc-9ba0-0188a20ac99a · outbound

This paper cites Surrogate NAS benchmarks: Going beyond the limited search spaces of tabular NAS benchmarks,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Surrogate NAS benchmarks: Going beyond the limited search spaces of tabular NAS benchmarks,

Reference 94

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:5f21f53a29a8d6b846a600dde2c438378128816932308c750303c17a9d60eb8d

Observation bff7da0f-5e97-43d8-9608-213f3ba9c4e8 · outbound

This paper cites Efficient benchmarking of hyperparameter optimizers via surrogates,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Efficient benchmarking of hyperparameter optimizers via surrogates,

Reference 95

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:14fda466410e8c9213ab49dcc4f1a9d916651edb8be8ca76488c977fde03df3c

Observation 950528ba-cc7a-4f6f-9924-f54e1ae1b0fd · outbound

This paper cites Efficient benchmarking of algorithm configurators via model- based surrogates,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Efficient benchmarking of algorithm configurators via model- based surrogates,

Reference 96

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:ea8af93c9d6229373c80987f8089bebeed0e5738de385e7e2dfeebdbb084586a

Observation e89c4e94-a6ee-43c2-9218-75fef5e6fc33 · outbound

This paper cites A cluster analysis method for grouping means in the analysis of variance,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE A cluster analysis method for grouping means in the analysis of variance,

Reference 97

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:c7f68d9987f59333044b4f2f91b86e4ceec5f46d579ce5e0837258284fc59836

Observation b896db23-e61d-4f0f-83c3-2c19892d3f73 · outbound

This paper cites Exploratory landscape analysis,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Exploratory landscape analysis,

Reference 98

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:a324f5a8ab7d130df4e271f154ee87cf1f1f85a428fbd44fd1220487c0cf4eb7

Observation 2ce1a512-6a1e-4eb3-8d0c-ad20ed459914 · outbound

This paper cites Detecting funnel structures by means of exploratory landscape analysis,.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Detecting funnel structures by means of exploratory landscape analysis,

Reference 99

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source=pdf_text observed=2026-07-14T03:44:36.121772Z digest=sha256:c6770f2a547d192cd822611a2a0266a52ffe6098dfb9a568a699b391bfb9cf00

Observation ecdfd028-bc14-443f-9989-c22fc7a8996a · outbound

This paper cites Fitness distance correlation as a measure of problem difficulty for genetic algorithms.

Which Optimizer, At What Budget? A Tournament of Optimizers for Search-Based SE Fitness distance correlation as a measure of problem difficulty for genetic algorithms

Reference 100

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Pith citing papers

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