dailysudoku.com

crunched · Joined: 05 Feb 2008 Posts: 168

Here is the grid after basics.

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

The old reliable, an xy-wing (237), will solve it in one step.

Earl

Clement · Posted: Thu Mar 05, 2009 1:48 pm Post subject: Daily Sudoku: Thu 5-Mar-2009 VH

XY-Wing {237} Pivot {23}r9c1 eliminating 7's in r1c2 &r3c2 solves the puzzle.

stevieboy · Joined: 25 Jan 2008 Posts: 31 Location: Michigan

It seemed like it took years to find the (237) xy-wing, but, that's what broke it open!

Fungii · Joined: 06 Mar 2009 Posts: 2

I'm kind of new to these funky techniques you guys use to solve these puzzles, so I didn't see the (237) xy-wing. Sad

Instead, I worked on the (5,7) r5c3. Both options worked to eliminate the 5 in r4c1, which left the only 5 in that column at r7c1. Once I got that 5 solved, everything else fell into place.

But yeah, I like the (237) xy-wing much better, very elegant. I will get the hang of it one day! Smile

Marty R. · Posted: Fri Mar 06, 2009 4:57 am Post subject:

Hi Fungii,

Welcome to the forum. Enjoy your stay, lots of funky elegance here!! Wink

crunched · Joined: 05 Feb 2008 Posts: 168

So how did your technique solve the puzzle?
I did notice that the 7s in column 3 force an elimination of the rest of the 7s in box 4. Also, more eliminations were made in box 6.
See resulting grid below.
But I could not go any further.
How did you take another step to get rid of the 5 in r4c1?

Charlie W · Joined: 26 Feb 2009 Posts: 1

Crunched, if r5c3 is 5, then r4c1 is not 5. If r5c3 is 7, then r4c3 and r4c5 are both 25 (via r5c4). These are matched pairs that also eliminate 5 in r4c1.

I'm just getting the hang of these VHs (helped a lot by all the archive puzzles and posts - thanks everyone), and I also used the xy wing for this one.

crunched · Joined: 05 Feb 2008 Posts: 168

Ahhh. Very good. I see the logic in what you did here to eliminate the 5 in r4c1.
Thanks.