|
阅读:3634回复:6
利用C/A码进行伪距测量,是否存在测距模糊度?如果存在如何解决?
利用C/A码进行伪距测量,是否存在测距模糊度?如果存在如何解决?<img src="images/post/smile/dvbbs/em12.gif" />
|
|
|
|
1楼#
发布于:2004-10-22 20:06
<P>本振信号和接收信号进行比较,就算出了。</P>
[此贴子已经被作者于2004-10-22 20:08:13编辑过]
|
|
|
2楼#
发布于:2004-10-22 09:56
其实不存在哪部分导航信息。这是数字通信的原理。就像手机定位一样,你读信息的时候就知道信号大致发出的时间。
|
|
|
3楼#
发布于:2004-10-14 22:19
<P>谢谢楼上朋友的解答!</P><P>接收机利用导航信息中的哪一部分内容进行解算测距模糊度?如何解算能够详细说说吗?</P><P>谢谢!</P>
|
|
|
|
4楼#
发布于:2004-10-14 18:22
<DIV class=quote><B>以下是引用<I>CyberTiger</I>在2004-10-11 20:44:04的发言:</B>
利用C/A码进行伪距测量,是否存在测距模糊度?如果存在如何解决?<img src="images/post/smile/dvbbs/em12.gif" /></DIV> <P>昨天我的输入法坏了, <P>是有的,不过在接受机测量伪距时就自动解开了。它是通过解读卫星导航信息揭开的,来保证接收器的时钟误差小于1毫秒。</P> |
|
|
5楼#
发布于:2004-10-14 09:38
<P>楼上的蛮专业的嘛</P>
<P>应该是同行</P> [此贴子已经被作者于2004-10-14 9:46:35编辑过]
|
|
|
6楼#
发布于:2004-10-13 08:26
<P>Yes, but it is different from the integer ambiguity of carrier phase.</P>
<P>Most reference tells that integer ambiguity of C/A code is solve by knowing a approxinate position. But this is false. In fact C/A integer ambiguity is solve by receiver. When receiver reading GPS signal, they decode the navigation signal, and than find the integer ambiguity.</P> <P>Navigation singal is 50 bps, while C/A is 1 M bps, therefore if receiver can aglin navigation code within accurace of 1 of 20th, it could determine the integer ambiguity of C/A easily. So receiver reads the C/A code phase in the whole value, not only this decimal value.</P> |
|
