lycier Posted November 13, 2013 Report Share Posted November 13, 2013 今天我看到一副叫牌,序列如下:[hv=pc=n&s=st4hqj854d853cqj6&n=sqj9863hakdq76ca2&d=n&v=0&b=1&a=1sp1np3sppp]266|200[/hv] 别说3♠了,就连完成2♠定约,也是接近无望的。人们不是常说嘛,3♠=16P+,6张将牌,果真这样吗?我们叫牌的时候不能不考虑定约的安全性,时刻要考虑什么样的牌面叫到多高的阶数是安全的,这样的3S可算合理?有何改善的方法呢? Quote Link to comment Share on other sites More sharing options...
ynhhyjb Posted November 13, 2013 Report Share Posted November 13, 2013 跳叫3S的条件是,15P+,6张S好套,此牌不满足S好套,所以开方应采用巴特约定,叫2C,应方叫2S,5-7P弱牌,2张小S,开方S缺AK,加同伴牌点不够成局,PASS Quote Link to comment Share on other sites More sharing options...
sungh Posted November 14, 2013 Report Share Posted November 14, 2013 1、开叫方的持牌特征是:含6张高花弱套的均型牌,大牌分散在4个花色中。2、再叫3♠的定义是:16+p的好套,非均型牌。所以,这牌不适合再叫3♠,按照楼上的方法采用巴特约定叫更合理些。 Quote Link to comment Share on other sites More sharing options...
yhql Posted November 14, 2013 Report Share Posted November 14, 2013 学习了 Quote Link to comment Share on other sites More sharing options...
lycier Posted November 14, 2013 Author Report Share Posted November 14, 2013 跳叫3S的条件是,15P+,S好套,此牌不满足S好套,所以开方应采用巴特约定,叫2C,应方叫2S,5-7P弱牌,2张小S,开方S缺AK,加同伴牌点不够成局,PASS15P+的说法不妥,肯定不妥,除非有牌型的纯净的牌面。15p并且将牌6张套是,按照低限再叫处理,即便是♠是这般模样:AKT987为了避免灾难,所以我们需要应用Bart约定叫,设定2♣为逼叫,2♦接力=8P+,那时候,开叫人再跳叫3♠是很安全的阶数! Quote Link to comment Share on other sites More sharing options...
lycier Posted November 14, 2013 Author Report Share Posted November 14, 2013 基本的正确理念要树立起来,不然你越来越吃紧而信心日减。任何人在没有开悟之前,在处处碰壁的维谷里,都不要在自我想象中去勾勒桥牌的大写意!!! Quote Link to comment Share on other sites More sharing options...
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