$ {q \choose m} = 0$, for all $m = 1, ..., q-1$.

Asked Apr 03 '19 at 11:49

Active Jun 20 '22 at 16:22

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Let $F$ a field with $\operatorname{char}F\mid q$, then $\displaystyle {q \choose m} = 0$, for all $m = 1, ..., q-1$.

Comments: I'm trying to decompose q into product of primes.

edited Jun 20 '22 at 16:22

asked Apr 03 '19 at 11:49

Croos

Hint: the characteristic of a field is either $0$ or a prime number $p$. – Bernard Apr 03 '19 at 11:54
See also this question. – Dietrich Burde Apr 03 '19 at 11:56

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