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-rw-r--r--gnuradio-core/src/lib/filter/gr_pfb_clock_sync_ccf.h6
1 files changed, 3 insertions, 3 deletions
diff --git a/gnuradio-core/src/lib/filter/gr_pfb_clock_sync_ccf.h b/gnuradio-core/src/lib/filter/gr_pfb_clock_sync_ccf.h
index 4e6ef5fc4..9a6cde9a2 100644
--- a/gnuradio-core/src/lib/filter/gr_pfb_clock_sync_ccf.h
+++ b/gnuradio-core/src/lib/filter/gr_pfb_clock_sync_ccf.h
@@ -84,8 +84,8 @@ class gr_fir_ccf;
* the block constructor, we just ask for "gain," which is d_alpha while d_beta is
* equal to (gain^2)/4.
*
- * The clock sync block needs to know the number of samples per second (sps), because it
- * only returns a single point representing the sample. The sps can be any positive real
+ * The clock sync block needs to know the number of samples per symbol (sps), because it
+ * only returns a single point representing the symbol. The sps can be any positive real
* number and does not need to be an integer. The filter taps must also be specified. The
* taps are generated by first conceiving of the prototype filter that would be the signal's
* matched filter. Then interpolate this by the number of filters in the filterbank. These
@@ -115,7 +115,7 @@ class gr_pfb_clock_sync_ccf : public gr_block
private:
/*!
* Build the polyphase filterbank timing synchronizer.
- * \param sps (double) The number of samples per second in the incoming signal
+ * \param sps (double) The number of samples per symbol in the incoming signal
* \param gain (float) The alpha gain of the control loop; beta = (gain^2)/4 by default.
* \param taps (vector<int>) The filter taps.
* \param filter_size (uint) The number of filters in the filterbank (default = 32).