Return-Path: Received: from mtain-ma12.r1000.mx.aol.com (mtain-ma12.r1000.mx.aol.com [172.29.96.20]) by air-mc04.mail.aol.com (v126.13) with ESMTP id MAILINMC044-a9324b4a6091fe; Sun, 10 Jan 2010 18:19:45 -0500 Received: from post.thorcom.com (post.thorcom.com [193.82.116.20]) by mtain-ma12.r1000.mx.aol.com (Internet Inbound) with ESMTP id 7B33D38000088; Sun, 10 Jan 2010 18:19:44 -0500 (EST) Received: from majordom by post.thorcom.com with local (Exim 4.14) id 1NU73Z-0006oK-FD for rs_out_1@blacksheep.org; Sun, 10 Jan 2010 23:18:49 +0000 Received: from [193.82.116.32] (helo=relay1.thorcom.net) by post.thorcom.com with esmtp (Exim 4.14) id 1NU73Y-0006oB-WD for rsgb_lf_group@blacksheep.org; Sun, 10 Jan 2010 23:18:48 +0000 Received: from fg-out-1718.google.com ([72.14.220.159]) by relay1.thorcom.net with esmtp (Exim 4.63) (envelope-from ) id 1NU73V-0005UD-Fx for rsgb_lf_group@blacksheep.org; Sun, 10 Jan 2010 23:18:48 +0000 Received: by fg-out-1718.google.com with SMTP id e12so378530fga.10 for ; Sun, 10 Jan 2010 15:18:43 -0800 (PST) DKIM-Signature: v=1; a=rsa-sha256; c=relaxed/relaxed; d=googlemail.com; s=gamma; h=domainkey-signature:mime-version:received:date:message-id:subject :from:to:content-type; bh=ARjnHHKo70p9NsJGD4BxO2p+BhrVOhDRQDuhXUcSER4=; b=SDk8NBE/6/c7AqrUmiaykJGQD0A43DtAYAMTxXe1uj8a0ezYnTECphlL5hNs6ipTrk Fw7Sq5m/iwNFHdPPvIjoUiaZx0hRbxVe6FQ7zaPSjnWDWV2//Hu38GZ0a7rCyynSb0IX 1f5F9elhMc6ekvrF1YSLBFDRdK3XgFdVSDVhg= DomainKey-Signature: a=rsa-sha1; c=nofws; d=googlemail.com; s=gamma; h=mime-version:date:message-id:subject:from:to:content-type; b=BjlblmqyCOWCyTVbZbD1DLWyk8Y0rEhmtpBnSQ2h4Dzp84oCzxPaF4gYcwC4LDJ40Y a/zrdG1Thnsr/Ixgaedk+k2UA5rWA6UIpICMYccWtV+/zypxL/6/cJD9mAxT6qB035zX 00p0D3Ht0WByJ7bLBYudgQNmwtuZOHsuuxX0M= MIME-Version: 1.0 Received: by 10.239.188.146 with SMTP id p18mr823329hbh.208.1263165523294; Sun, 10 Jan 2010 15:18:43 -0800 (PST) Date: Sun, 10 Jan 2010 23:18:43 +0000 Message-ID: From: Andy Talbot To: rsgb_lf_group@blacksheep.org X-Karma: unknown: DomainKey-Status: good (testing) X-Spam-Score: 0.9 (/) X-Spam-Report: autolearn=disabled,HTML_10_20=0.945,HTML_MESSAGE=0.001 Subject: LF: CW S/N abilities Content-Type: multipart/alternative; boundary=001485f795f44ef961047cd7a40e X-Spam-Checker-Version: SpamAssassin 2.63 (2004-01-11) on post.thorcom.com X-Spam-Level: X-Spam-Status: No, hits=0.0 required=5.0 tests=HTML_MESSAGE autolearn=no version=2.63 X-SA-Exim-Scanned: Yes Sender: owner-rsgb_lf_group@blacksheep.org Precedence: bulk Reply-To: rsgb_lf_group@blacksheep.org X-Listname: rsgb_lf_group X-SA-Exim-Rcpt-To: rs_out_1@blacksheep.org X-SA-Exim-Scanned: No; SAEximRunCond expanded to false x-aol-global-disposition: G x-aol-sid: 3039ac1d60144b4a6090185b X-AOL-IP: 193.82.116.20 X-Mailer: Unknown (No Version) --001485f795f44ef961047cd7a40e Content-Type: text/plain; charset=ISO-8859-1 A serious appeal to all the CW and QRS(S) ops on this reflector. I'm interested in what can *really* be achieved in terms of readability of weak CW . For the calculations mentioned earlier I made the assumption the best listeners can *read* 20 - 30WPM in 10dB S/N in a 30Hz bandwidth, without repeats, which equates to -9dB S/N in the standardised 2500Hz. It is possible to detect a tone significantly lower than this, (I can positively detect a 600Hz tone at -25dB S/N in 2500Hz, but wouldn't know immediately if it was switched on/off) but first-time readability is essential. If anyone can measure S/N accurately and have measured your CW receiving capability, it would be interesting to get confirmation or otherwise that this assumption is not too-far-out. Same applies to QRS(S) although this I suspect is less amenable to any additional processing gain from learning and experience. S/N can be determined from any spectrogram software offering a spectrum rather than waterfall display. Note the height of the tone spike above the average noise level; this is the S/N in the bandwidth of the FFT Bin Determine this value if it is not stated as a 'resolution' or any similar name. If not given specifically, resolution BW can be calculated from Sampling rate divided by FFT size. Eg 11025Hz sampling with 4096 point FFT gives a resolution of 2.7Hz. The normalised 2500Hz value is then obtained from S/N [2.5k] = S/N [measured] - 10.LOG (Resolution BW / 2500). If you can't measure S/N, record the marginal you've 100% copied and I will measure it. Please be honest about this. If some CW experts clain they can out-perform any appliance operator, lets see the figures that prove it. Andy www.g4jnt.com --001485f795f44ef961047cd7a40e Content-Type: text/html; charset=ISO-8859-1 Content-Transfer-Encoding: quoted-printable
A serious appeal to all the CW and QRS(S) ops on this reflector.=A0= =A0
=A0
I'm interested in what can really be achieved in terms= of readability of weak CW .=A0 For the calculations mentioned earlier=A0I= made the assumption the best listeners can read 20 - 30W= PM in 10dB S/N in a 30Hz bandwidth, without repeats,=A0which equates to -9= dB S/N in the standardised 2500Hz. It is possible to detect a=A0tone signi= ficantly lower than this, (I can positively detect a 600Hz=A0tone at -25dB= S/N=A0in 2500Hz, but wouldn't know immediately if it was switched on/= off) =A0but first-time readability is essential.=A0=A0 If anyone can measu= re S/N accurately and have measured your CW receiving capability, it would= be interesting to get confirmation or otherwise that this assumption is= not too-far-out.=A0
Same applies to QRS(S) although this I suspect is less amenable to an= y additional processing gain from learning and experience.
=A0
S/N can be determined from any spectrogram software offering=A0 a=A0s= pectrum rather than waterfall display.=A0=A0=A0 Note the=A0height of the= tone spike above the average noise level;=A0 this is the S/N in the bandw= idth of the FFT Bin=A0=A0 Determine this=A0value if it is not stated as=A0= a 'resolution' or=A0any similar name.=A0
If not given specifically, resolution BW can be=A0calculated from Sam= pling rate=A0divided by=A0FFT size.=A0 Eg 11025Hz sampling with 4096 point= FFT gives a resolution of 2.7Hz.
The normalised 2500Hz value is then obtained from S/N [2.5k] =3D=A0= S/N [measured]=A0=A0 -=A0 10.LOG (Resolution BW / 2500).=A0=A0
If you can't measure S/N, record the marginal you've 100% cop= ied=A0and I will measure it.
=A0
Please be honest about this.=A0 If=A0some CW experts clain they can= out-perform any appliance operator, lets see the figures=A0that prove it.=
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