dailysudoku.com

Earl · Joined: 30 May 2007 Posts: 677 Location: Victoria, KS

A multiple choice today. The old reliable or alternate routes.

Solutions: (158) xy-wing, (49) UR, or an xy-chain can solve it.

Early Earl

crunched · Joined: 05 Feb 2008 Posts: 168

Wow, all kinds of ways to git er dun? Impressive! I did find the 158-xy wing, but never saw a UR, or other means to solve. Below is the grid, after basics opened up the xy wing that solved it for me. I won't claim I got all the basics; but enough to "wing it".
Now I see the UR, since Earl-y mentioning it.

Marty R. · Posted: Mon Jul 06, 2009 4:58 am Post subject:

In that grid, the 18 pair in column 6 makes some eliminations. With that out of the way, a W-Wing on 15 becomes another possibility.

crunched · Joined: 05 Feb 2008 Posts: 168

Roger S · Joined: 20 Jun 2009 Posts: 6 Location: UK

I got as far as the above and then did a UR 49 in r7c1,r9c1 r7c4 r9c4. This means r7c4 must be a 6 the rest then dropped out is this valid

Thanks

Roger

Marty R. · Posted: Mon Jul 06, 2009 7:55 pm Post subject:

storm_norm · Joined: 18 Oct 2007 Posts: 1741

keith · Posted: Thu Jul 09, 2009 12:52 am Post subject:

storm_norm · Joined: 18 Oct 2007 Posts: 1741

Keith,
you are right that the M-wing isn't needed and that most would see the otherwise obvious 158 xy-wing.

but the M-wing is there nonetheless.

(x=y) - y = (y-x) = x

(1=5) - 5 = (5-1) = 1

which is what we have in the marked cells.

we have the {1,5}r4c2 connected to the {1,5}r6c7 via the strong links on 5 in row 6, and the pincer 1 strongly linked to the 1 in r6c7, completing the pincer with the 1 in r4c2, thus eliminating the 1 in r4c5.