In each critical strip of a normalized exponential sum, the number of zeros in a rectangle of height r is asymptotically |w_j - w_k| r/(2π), up to an O(1) error.
Generalization of P\'olya's zero distribution theory for exponential polynomials, plus sharp results for asymptotic growth
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abstract
An exponential polynomial of order $q$ is an entire function of the form $$ f(z)=P_1(z)e^{Q_1(z)}+\cdots +P_k(z)e^{Q_k(z)}, $$ where the coefficients $P_j(z),Q_j(z)$ are polynomials in $z$ such that $$ \max\{\deg{Q_j}\}=q. $$ In 1977 Steinmetz proved that the zeros of $f$ lying outside of finitely many logarithmic strips around so called critical rays have exponent of convergence $\leq q-1$. This result does not say nothing about the zero distribution of $f$ in each individual logarithmic strip. Here, it is shown that the asymptotic growth of the non-integrated counting function of zeros of $f$ is asymptotically comparable to $r^q$ in each logarithmic strip. The result generalizes the first order results by P\'olya and Schwengeler from the 1920's, and it shows, among other things, that the critical rays of $f$ are precisely the Borel directions of order $q$ of $f$. The error terms in the asymptotic equations for $T(r,f)$ and $N(r,1/f)$ originally due to Steinmetz are also improved.
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The asymptotic number of zeros of exponential sums in critical strips
In each critical strip of a normalized exponential sum, the number of zeros in a rectangle of height r is asymptotically |w_j - w_k| r/(2π), up to an O(1) error.