An operator is a routine<br><br><div class="gmail_quote">On Fri, Dec 28, 2012 at 10:57 PM, James E Keenan <span dir="ltr"><<a href="mailto:jkeen@verizon.net" target="_blank">jkeen@verizon.net</a>></span> wrote:<br><blockquote class="gmail_quote" style="margin:0 0 0 .8ex;border-left:1px #ccc solid;padding-left:1ex">
<div class="im">On 12/27/12 11:43 PM, Uri Guttman wrote:<br>
<br>
<blockquote class="gmail_quote" style="margin:0 0 0 .8ex;border-left:1px #ccc solid;padding-left:1ex">
i want to clarify my statement there. it is the scalar prototype of not<br>
that is causing this as well as its low precedence.<br>
</blockquote>
<br></div>
I'm familiar with prototypes as an aspect of subroutines in Perl (for instance, Test::More::is is, under the hood, prototyped $$;$), but not with the concept of prototypes for operators. Can you point me toward the documentation or source code for that?<div class="im HOEnZb">
<br>
<br>
Thank you very much.<br>
Jim Keenan<br></div><div class="HOEnZb"><div class="h5">
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