If I have modular functions $f$ and $g$ with $f = a_{1} + a_{2}q + \cdots$ and $g = b_{1} + b_{2}a + \cdots$ both $q$-expansions, why does/how does it follow $f = g$ after checking only finitely many terms?
Agreement of $q$-expansion of modular forms
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0@John You might as well write that up as an answer. – 2011-07-01
1 Answers
Suppose $f$ and $g$ both have weight $k$ and level $\Gamma$. As John M notes, it is clear that there must exist some constant $N$ depending on $\Gamma$ and $k$ such that if $a_i = b_i$ for $0 \le i \le N$, then $f = g$, since the space $M_k(\Gamma)$ in which both forms live is finite-dimensional.
This doesn't help you find $N$ though. The simplest general result is the "Sturm bound", which shows that one may take $ N = \frac{k d_\Gamma}{12}$ where $d_\Gamma$ is the index of the image of $\Gamma$ in $\operatorname{PSL}_2(\mathbb{Z})$, which is either equal to or half of the index of $\Gamma$ in $\operatorname{SL}_2(\mathbb{Z})$ depending on whether or not $-1 \in \Gamma$. This is well explained in William Stein's free online textbook "Computing with Modular Forms".