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

As high as your taxes.

Solution Skyscraper (9)

Early Earl

Marty R. · Posted: Fri Apr 16, 2010 3:43 am Post subject:

There are some other interesting solutions. One is a UR that's a Type 4 but you get get more mileage by using it to create a pincer situation. Another is a flightless M-Wing with transport. There's a standard XY-Wing and a DP that's in three boxes. I didn't notice the solution that you used.

arjun · Joined: 28 Sep 2009 Posts: 16

This is only the 3rd very hard that I have completed. I don't know the exact notation, but this is what I did.

1. Unique Rectangle with 69
2. Don't remember this step. But I eliminated a "2" in R7C4. It was either a forcing chain or a XYZ wing
3. Another forcing chain - If R9C4 is a 2 or a 4, R7C4 is a 1
4. 249 XYZ wing which means R7C2 is a 6

Willzzz · Joined: 22 Aug 2008 Posts: 5

One step
r6c1 can't be a 9 as it would make both r5c6 and r7c6 a 2.

Don't know much about terminology Smile

arjun · Joined: 28 Sep 2009 Posts: 16

Could someone post the grid after basics so I know what other people are talking about?

Willzzz · Joined: 22 Aug 2008 Posts: 5

Arjun, I think your 249 wing solves it on it's own, the earlier steps aren't required.

arkietech · Posted: Fri Apr 16, 2010 1:30 pm Post subject:

Here is my grid after basics:

Steve R · Posted: Fri Apr 16, 2010 1:55 pm Post subject:

arkietech · Posted: Fri Apr 16, 2010 3:07 pm Post subject:

Marty R. · Posted: Fri Apr 16, 2010 5:19 pm Post subject:

Dan, also note the 69 UR. The DP killers are 7 or 4. The 7 in r5c1 proves 4 in r7c1, killing the 4 in r9c1.

arjun · Joined: 28 Sep 2009 Posts: 16

Marty R. · Posted: Fri Apr 16, 2010 7:05 pm Post subject:

arjun · Joined: 28 Sep 2009 Posts: 16

Marty R. · Posted: Fri Apr 16, 2010 9:32 pm Post subject:

Wendy W · Joined: 04 Feb 2008 Posts: 144

This one gave me fits -- til I realized that the XY-wing on 249 made TWO eliminations in box 7, not just in column 1. I'm still shaking my head...
Embarassed

Marty R. · Posted: Sat Apr 17, 2010 1:22 am Post subject:

tlanglet · Posted: Sat Apr 17, 2010 2:41 am Post subject:

Marty & arjun,

I do not know the "formal/logical/proper" answer to the issue, but I can shed some light on the situation.

Basically, r5c1 can not be equal to 7 as demonstrated by still another chain: (7)r5c1 - (7=2)r5c6 - (2=9)r7c6 - r7c2 = r5c2 - (9=7)r6c1; r5c1<>7
Thus if r5c1=7, then r6c1=7 which is not possible.

The upshot is that the UR69 now becomes a type 1 and r7c1=4 to prevent the deadly pattern.

I was told some time ago without explanation that any path that provided a conclusion, such as the one posted by Marty, is valid. It would be nice to know if that is actually correct and, if so, why.

Ted

Marty R. · Posted: Sat Apr 17, 2010 3:49 am Post subject:

Mogulmeister · Joined: 03 May 2007 Posts: 1151