What happens when you assign input to output in a general_work call, out[ii]=in[ii], but don't call produce?Then you're breaking a contract!
GNU Radio has to rely on you only writing samples you admit that you produce -- otherwise, the write pointer can't advance, and the next general_work will be offered the same buffer space again.
My minds eye sees the out variable as a secondary local buffer for general_work.There is no local buffer! You directly work on the pseudocircular buffers; everything else would introduce unnecessary copy overhead.
Best regards,
Marcus
On 06/24/2015 09:23 PM, Richard Bell wrote:
Richv/r,What happens when you assign input to output in a general_work call, out[ii]=in[ii], but don't call produce? Is the stuff you dumped into 'out' lost when general_work returns WORK_CALLED_PRODUCE?My minds eye sees the out variable as a secondary local buffer for general_work. You dump stuff in there while general_work has scope, and transfer the contents of this buffer to the gnuradio block buffer when you call produce. Am I understanding this correctly?
_______________________________________________ Discuss-gnuradio mailing list Discuss-gnuradio@gnu.org https://lists.gnu.org/mailman/listinfo/discuss-gnuradio
No comments:
Post a Comment