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ISEE Middle Level Quantitative : Numbers and Operations

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All ISEE Middle Level Quantitative Resources

6 Diagnostic Tests 110 Practice Tests Question of the Day Flashcards Learn by Concept

Example Questions

Example Question #557 : Number & Operations In Base Ten

Solve:

$\begin{array}{r}\overset{~ \space{\ }}{\ 6} \space{\,}6\\ \times\phantom{0}5\space{\,}6 \\ \hline \phantom{\,}\end{array}$

Possible Answers:

3696

3706

36960

3686

Correct answer:

3696

Explanation:

In order to solve this problem using multiplication, we must multiply each digit of the multiplier by each digit of the multiplicand to get the answer, which is called the product.

$\frac{\begin{array}[b]{r}\textup{multiplicand}\\ \times\ \ \ \ \textup{multiplier}\end{array}}{\ \ \ \ \textup{product}}$

For this problem, 56 is the multiplier and 66 is the multiplicand. We start with the multiplier, and multiply the digit in the ones place by each digit of the multiplicand.

First, we multiply 6 and 6

$\begin{array}{r}\overset{3 \space{\ }}{\ 6} \space{\,}6\\ \times \phantom{0} 5\space{\,}6\\ \hline \phantom{\,} \,6\end{array}$

Then, we multiply 6 and 6 and add the 3 that was carried

$\begin{array}{r}\overset{3 \space{\ }}{\ 6} \space{\,}6\\ \times \phantom{0} 5\space{\,}6 \\ \hline \phantom{\,}3\,9\,6\end{array}$

Now, we multiply the digit in the tens place of the multiplier by each digit of the multiplicand. In order to do this, we need to start a new line in our math problem and put a 0 as a place holder in the ones position.

$\begin{array}{r}\overset{~ \space{\ }}{\ 6} \space{\,}6\\ \times \phantom{0} 5\space{\,}6 \\ \hline \phantom{\,}3\,9\,6 \\ \, 0 \end{array}$

Next, we multiply 5 and 6

$\begin{array}{r}\overset{3 \space{\ }}{\ 6} \space{\,}6\\ \times \phantom{0} 5\space{\,}6 \\ \hline \phantom{\,}3\,9\,6 \\ \, 0 \, 0\end{array}$

Then, we multiply 5 and 6and add the 3 that was carried

$\begin{array}{r}\overset{3 \space{\ }}{\ 6} \space{\,}6\\ \times \phantom{0} 5\space{\,}6 \\ \hline \phantom{\,}3\,9\,6 \\ \, 3 \, 3 \, 0 \, 0\end{array}$

Finally, we add the two products together to find our final answer

$\begin{array}{r}\overset{3 \space{\ }}{\ 6} \space{\,}6\\ \times \phantom{0} 5\space{\,}6 \\ \hline \phantom{\,}3\,9\,6 \\+\, 3 \, 3 \, 0 \, 0\\ \hline 3\, 6 \, 9\, 6\end{array}$

Report an Error

Example Question #34 : Fluently Multiply Multi Digit Whole Numbers: Ccss.Math.Content.5.Nbt.B.5

Solve:

$\begin{array}{r}\overset{~ \space{\ }}{\ 1} \space{\,}8\\ \times\phantom{0}2\space{\,}7 \\ \hline \phantom{\,}\end{array}$

Possible Answers:

486

496

476

4860

Correct answer:

486

Explanation:

In order to solve this problem using multiplication, we must multiply each digit of the multiplier by each digit of the multiplicand to get the answer, which is called the product.

$\frac{\begin{array}[b]{r}\textup{multiplicand}\\ \times\ \ \ \ \textup{multiplier}\end{array}}{\ \ \ \ \textup{product}}$

For this problem, 27 is the multiplier and 18 is the multiplicand. We start with the multiplier, and multiply the digit in the ones place by each digit of the multiplicand.

First, we multiply 7 and 8

$\begin{array}{r}\overset{5 \space{\ }}{\ 1} \space{\,}8\\ \times \phantom{0} 2\space{\,}7\\ \hline \phantom{\,} \,6\end{array}$

Then, we multiply 7 and 1 and add the 5 that was carried

$\begin{array}{r}\overset{5 \space{\ }}{\ 1} \space{\,}8\\ \times \phantom{0} 2\space{\,}7 \\ \hline \phantom{\,}1\,2\,6\end{array}$

$\begin{array}{r}\overset{~ \space{\ }}{\ 1} \space{\,}8\\ \times \phantom{0} 2\space{\,}7 \\ \hline \phantom{\,}1\,2\,6 \\ \, 0 \end{array}$

Next, we multiply 2 and 8

$\begin{array}{r}\overset{1 \space{\ }}{\ 1} \space{\,}8\\ \times \phantom{0} 2\space{\,}7 \\ \hline \phantom{\,}1\,2\,6 \\ \, 6 \, 0\end{array}$

Then, we multiply 2 and 1and add the 1 that was carried

$\begin{array}{r}\overset{1 \space{\ }}{\ 1} \space{\,}8\\ \times \phantom{0} 2\space{\,}7 \\ \hline \phantom{\,}1\,2\,6 \\ \, 3 \, 6 \, 0\end{array}$

Finally, we add the two products together to find our final answer

$\begin{array}{r}\overset{1 \space{\ }}{\ 1} \space{\,}8\\ \times \phantom{0} 2\space{\,}7 \\ \hline \phantom{\,}1\,2\,6 \\+\, 3 \, 6 \, 0\\ \hline 4\, 8 \, 6\end{array}$

Report an Error

Example Question #35 : Fluently Multiply Multi Digit Whole Numbers: Ccss.Math.Content.5.Nbt.B.5

Solve:

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}5\\ \times\phantom{0}4\space{\,}0 \\ \hline \phantom{\,}\end{array}$

Possible Answers:

3410

34000

3390

3400

Correct answer:

3400

Explanation:

In order to solve this problem using multiplication, we must multiply each digit of the multiplier by each digit of the multiplicand to get the answer, which is called the product.

$\frac{\begin{array}[b]{r}\textup{multiplicand}\\ \times\ \ \ \ \textup{multiplier}\end{array}}{\ \ \ \ \textup{product}}$

For this problem, 40 is the multiplier and 85 is the multiplicand. We start with the multiplier, and multiply the digit in the ones place by each digit of the multiplicand.

First, we multiply 0 and 5

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}5\\ \times \phantom{0} 4\space{\,}0 \\ \hline \phantom{\,} \,0\end{array}$

Then, we multiply 0 and 8

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}5\\ \times \phantom{0} 4\space{\,}0 \\ \hline \phantom{\,} \,0\,0\end{array}$

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}5\\ \times \phantom{0} 4\space{\,}0 \\ \hline \phantom{\,} \,0\,0 \\ \, 0 \end{array}$

Next, we multiply 4 and 5

$\begin{array}{r}\overset{2 \space{\ }}{\ 8} \space{\,}5\\ \times \phantom{0} 4\space{\,}0 \\ \hline \phantom{\,} \,0\,0 \\ \, 0 \, 0\end{array}$

Then, we multiply 4 and 8and add the 2 that was carried

$\begin{array}{r}\overset{2 \space{\ }}{\ 8} \space{\,}5\\ \times \phantom{0} 4\space{\,}0 \\ \hline \phantom{\,} \,0\,0 \\ \, 3 \, 4 \, 0 \, 0\end{array}$

Finally, we add the two products together to find our final answer

$\begin{array}{r}\overset{2 \space{\ }}{\ 8} \space{\,}5\\ \times \phantom{0} 4\space{\,}0 \\ \hline \phantom{\,} \,0\,0 \\+\, 3 \, 4 \, 0 \, 0\\ \hline 3\, 4 \, 0\, 0\end{array}$

Report an Error

Example Question #363 : Numbers And Operations

Solve:

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}6\\ \times\phantom{0}8\space{\,}7 \\ \hline \phantom{\,}\end{array}$

Possible Answers:

7482

7472

74820

7492

Correct answer:

7482

Explanation:

In order to solve this problem using multiplication, we must multiply each digit of the multiplier by each digit of the multiplicand to get the answer, which is called the product.

$\frac{\begin{array}[b]{r}\textup{multiplicand}\\ \times\ \ \ \ \textup{multiplier}\end{array}}{\ \ \ \ \textup{product}}$

For this problem, 87 is the multiplier and 86 is the multiplicand. We start with the multiplier, and multiply the digit in the ones place by each digit of the multiplicand.

First, we multiply 7 and 6

$\begin{array}{r}\overset{4 \space{\ }}{\ 8} \space{\,}6\\ \times \phantom{0} 8\space{\,}7\\ \hline \phantom{\,} \,2\end{array}$

Then, we multiply 7 and 8 and add the 4 that was carried

$\begin{array}{r}\overset{4 \space{\ }}{\ 8} \space{\,}6\\ \times \phantom{0} 8\space{\,}7 \\ \hline \phantom{\,}6\,0\,2\end{array}$

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}6\\ \times \phantom{0} 8\space{\,}7 \\ \hline \phantom{\,}6\,0\,2 \\ \, 0 \end{array}$

Next, we multiply 8 and 6

$\begin{array}{r}\overset{4 \space{\ }}{\ 8} \space{\,}6\\ \times \phantom{0} 8\space{\,}7 \\ \hline \phantom{\,}6\,0\,2 \\ \, 8 \, 0\end{array}$

Then, we multiply 8 and 8and add the 4 that was carried

$\begin{array}{r}\overset{4 \space{\ }}{\ 8} \space{\,}6\\ \times \phantom{0} 8\space{\,}7 \\ \hline \phantom{\,}6\,0\,2 \\ \, 6 \, 8 \, 8 \, 0\end{array}$

Finally, we add the two products together to find our final answer

$\begin{array}{r}\overset{4 \space{\ }}{\ 8} \space{\,}6\\ \times \phantom{0} 8\space{\,}7 \\ \hline \phantom{\,}6\,0\,2 \\+\, 6 \, 8 \, 8 \, 0\\ \hline 7\, 4 \, 8\, 2\end{array}$

Report an Error

Example Question #364 : Numbers And Operations

Solve:

$\begin{array}{r}\overset{~ \space{\ }}{\ 4} \space{\,}0\\ \times\phantom{0}5\space{\,}2 \\ \hline \phantom{\,}\end{array}$

Possible Answers:

2090

2080

2070

20800

Correct answer:

2080

Explanation:

In order to solve this problem using multiplication, we must multiply each digit of the multiplier by each digit of the multiplicand to get the answer, which is called the product.

$\frac{\begin{array}[b]{r}\textup{multiplicand}\\ \times\ \ \ \ \textup{multiplier}\end{array}}{\ \ \ \ \textup{product}}$

For this problem, 52 is the multiplier and 40 is the multiplicand. We start with the multiplier, and multiply the digit in the ones place by each digit of the multiplicand.

First, we multiply 2 and 0

$\begin{array}{r}\overset{~ \space{\ }}{\ 4} \space{\,}0\\ \times \phantom{0} 5\space{\,}2 \\ \hline \phantom{\,} \,0\end{array}$

Then, we multiply 2 and 4

$\begin{array}{r}\overset{~ \space{\ }}{\ 4} \space{\,}0\\ \times \phantom{0} 5\space{\,}2 \\ \hline \phantom{\,} \,8\,0\end{array}$

$\begin{array}{r}\overset{~ \space{\ }}{\ 4} \space{\,}0\\ \times \phantom{0} 5\space{\,}2 \\ \hline \phantom{\,} \,8\,0 \\ \, 0 \end{array}$

Next, we multiply 5 and 0

$\begin{array}{r}\overset{~ \space{\ }}{\ 4} \space{\,}0\\ \times \phantom{0} 5\space{\,}2 \\ \hline \phantom{\,} \,8\,0 \\ \, 0 \, 0\end{array}$

Then, we multiply 5 and 4

$\begin{array}{r}\overset{~ \space{\ }}{\ 4} \space{\,}0\\ \times \phantom{0} 5\space{\,}2 \\ \hline \phantom{\,} \,8\,0 \\ \, 2\, 0\, 0 \, 0\end{array}$

Finally, we add the two products together to find our final answer

$\begin{array}{r}\overset{~ \space{\ }}{\ 4} \space{\,}0\\ \times \phantom{0} 5\space{\,}2 \\ \hline \phantom{\,} \,8\,0 \\+\, 2\, 0\, 0 \, 0\\ \hline 2\, 0 \, 8\, 0\end{array}$

Report an Error

Example Question #365 : Numbers And Operations

Solve:

$\begin{array}{r}\overset{~ \space{\ }}{\ 3} \space{\,}2\\ \times\phantom{0}1\space{\,}3 \\ \hline \phantom{\,}\end{array}$

Possible Answers:

406

416

426

4160

Correct answer:

416

Explanation:

In order to solve this problem using multiplication, we must multiply each digit of the multiplier by each digit of the multiplicand to get the answer, which is called the product.

$\frac{\begin{array}[b]{r}\textup{multiplicand}\\ \times\ \ \ \ \textup{multiplier}\end{array}}{\ \ \ \ \textup{product}}$

For this problem, 13 is the multiplier and 32 is the multiplicand. We start with the multiplier, and multiply the digit in the ones place by each digit of the multiplicand.

First, we multiply 3 and 2

$\begin{array}{r}\overset{~ \space{\ }}{\ 3} \space{\,}2\\ \times \phantom{0} 1\space{\,}3 \\ \hline \phantom{\,} \,6\end{array}$

Then, we multiply 3 and 3

$\begin{array}{r}\overset{~ \space{\ }}{\ 3} \space{\,}2\\ \times \phantom{0} 1\space{\,}3 \\ \hline \phantom{\,} \,9\,6\end{array}$

$\begin{array}{r}\overset{~ \space{\ }}{\ 3} \space{\,}2\\ \times \phantom{0} 1\space{\,}3 \\ \hline \phantom{\,} \,9\,6 \\ \, 0 \end{array}$

Next, we multiply 1 and 2

$\begin{array}{r}\overset{~ \space{\ }}{\ 3} \space{\,}2\\ \times \phantom{0} 1\space{\,}3 \\ \hline \phantom{\,} \,9\,6 \\ \, 2 \, 0\end{array}$

Then, we multiply 1 and 3

$\begin{array}{r}\overset{~ \space{\ }}{\ 3} \space{\,}2\\ \times \phantom{0} 1\space{\,}3 \\ \hline \phantom{\,} \,9\,6 \\ \, 3 \, 2 \, 0\end{array}$

Finally, we add the two products together to find our final answer

$\begin{array}{r}\overset{~ \space{\ }}{\ 3} \space{\,}2\\ \times \phantom{0} 1\space{\,}3 \\ \hline \phantom{\,} \,9\,6 \\+\, 3 \, 2 \, 0\\ \hline 4\, 1 \, 6\end{array}$

Report an Error

Example Question #366 : Numbers And Operations

Solve:

$\begin{array}{r}\overset{~ \space{\ }}{\ 3} \space{\,}7\\ \times\phantom{0}6\space{\,}2 \\ \hline \phantom{\,}\end{array}$

Possible Answers:

2294

22940

2284

2304

Correct answer:

2294

Explanation:

In order to solve this problem using multiplication, we must multiply each digit of the multiplier by each digit of the multiplicand to get the answer, which is called the product.

$\frac{\begin{array}[b]{r}\textup{multiplicand}\\ \times\ \ \ \ \textup{multiplier}\end{array}}{\ \ \ \ \textup{product}}$

For this problem, 62 is the multiplier and 37 is the multiplicand. We start with the multiplier, and multiply the digit in the ones place by each digit of the multiplicand.

First, we multiply 2 and 7

$\begin{array}{r}\overset{1 \space{\ }}{\ 3} \space{\,}7\\ \times \phantom{0} 6\space{\,}2\\ \hline \phantom{\,} \,4\end{array}$

Then, we multiply 2 and 3 and add the 1 that was carried

$\begin{array}{r}\overset{1 \space{\ }}{\ 3} \space{\,}7\\ \times \phantom{0} 6\space{\,}2 \\ \hline \phantom{\,} \,7\,4\end{array}$

$\begin{array}{r}\overset{~ \space{\ }}{\ 3} \space{\,}7\\ \times \phantom{0} 6\space{\,}2 \\ \hline \phantom{\,} \,7\,4 \\ \, 0 \end{array}$

Next, we multiply 6 and 7

$\begin{array}{r}\overset{4 \space{\ }}{\ 3} \space{\,}7\\ \times \phantom{0} 6\space{\,}2 \\ \hline \phantom{\,} \,7\,4 \\ \, 2 \, 0\end{array}$

Then, we multiply 6 and 3and add the 4 that was carried

$\begin{array}{r}\overset{4 \space{\ }}{\ 3} \space{\,}7\\ \times \phantom{0} 6\space{\,}2 \\ \hline \phantom{\,} \,7\,4 \\ \, 2 \, 2 \, 2 \, 0\end{array}$

Finally, we add the two products together to find our final answer

$\begin{array}{r}\overset{4 \space{\ }}{\ 3} \space{\,}7\\ \times \phantom{0} 6\space{\,}2 \\ \hline \phantom{\,} \,7\,4 \\+\, 2 \, 2 \, 2 \, 0\\ \hline 2\, 2 \, 9\, 4\end{array}$

Report an Error

Example Question #367 : Numbers And Operations

Solve:

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}8\\ \times\phantom{0}2\space{\,}8 \\ \hline \phantom{\,}\end{array}$

Possible Answers:

2474

2464

2454

24640

Correct answer:

2464

Explanation:

In order to solve this problem using multiplication, we must multiply each digit of the multiplier by each digit of the multiplicand to get the answer, which is called the product.

$\frac{\begin{array}[b]{r}\textup{multiplicand}\\ \times\ \ \ \ \textup{multiplier}\end{array}}{\ \ \ \ \textup{product}}$

For this problem, 28 is the multiplier and 88 is the multiplicand. We start with the multiplier, and multiply the digit in the ones place by each digit of the multiplicand.

First, we multiply 8 and 8

$\begin{array}{r}\overset{6 \space{\ }}{\ 8} \space{\,}8\\ \times \phantom{0} 2\space{\,}8\\ \hline \phantom{\,} \,4\end{array}$

Then, we multiply 8 and 8 and add the 6 that was carried

$\begin{array}{r}\overset{6 \space{\ }}{\ 8} \space{\,}8\\ \times \phantom{0} 2\space{\,}8 \\ \hline \phantom{\,}7\,0\,4\end{array}$

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}8\\ \times \phantom{0} 2\space{\,}8 \\ \hline \phantom{\,}7\,0\,4 \\ \, 0 \end{array}$

Next, we multiply 2 and 8

$\begin{array}{r}\overset{1 \space{\ }}{\ 8} \space{\,}8\\ \times \phantom{0} 2\space{\,}8 \\ \hline \phantom{\,}7\,0\,4 \\ \, 6 \, 0\end{array}$

Then, we multiply 2 and 8and add the 1 that was carried

$\begin{array}{r}\overset{1 \space{\ }}{\ 8} \space{\,}8\\ \times \phantom{0} 2\space{\,}8 \\ \hline \phantom{\,}7\,0\,4 \\ \, 1 \, 7 \, 6 \, 0\end{array}$

Finally, we add the two products together to find our final answer

$\begin{array}{r}\overset{1 \space{\ }}{\ 8} \space{\,}8\\ \times \phantom{0} 2\space{\,}8 \\ \hline \phantom{\,}7\,0\,4 \\+\, 1 \, 7 \, 6 \, 0\\ \hline 2\, 4 \, 6\, 4\end{array}$

Report an Error

Example Question #368 : Numbers And Operations

Solve:

$\begin{array}{r}\overset{~ \space{\ }}{\ 4} \space{\,}5\\ \times\phantom{0}5\space{\,}4 \\ \hline \phantom{\,}\end{array}$

Possible Answers:

2430

2440

24300

2420

Correct answer:

2430

Explanation:

In order to solve this problem using multiplication, we must multiply each digit of the multiplier by each digit of the multiplicand to get the answer, which is called the product.

$\frac{\begin{array}[b]{r}\textup{multiplicand}\\ \times\ \ \ \ \textup{multiplier}\end{array}}{\ \ \ \ \textup{product}}$

For this problem, 54 is the multiplier and 45 is the multiplicand. We start with the multiplier, and multiply the digit in the ones place by each digit of the multiplicand.

First, we multiply 4 and 5

$\begin{array}{r}\overset{2 \space{\ }}{\ 4} \space{\,}5\\ \times \phantom{0} 5\space{\,}4\\ \hline \phantom{\,} \,0\end{array}$

Then, we multiply 4 and 4 and add the 2 that was carried

$\begin{array}{r}\overset{2 \space{\ }}{\ 4} \space{\,}5\\ \times \phantom{0} 5\space{\,}4 \\ \hline \phantom{\,}1\,8\,0\end{array}$

$\begin{array}{r}\overset{~ \space{\ }}{\ 4} \space{\,}5\\ \times \phantom{0} 5\space{\,}4 \\ \hline \phantom{\,}1\,8\,0 \\ \, 0 \end{array}$

Next, we multiply 5 and 5

$\begin{array}{r}\overset{2 \space{\ }}{\ 4} \space{\,}5\\ \times \phantom{0} 5\space{\,}4 \\ \hline \phantom{\,}1\,8\,0 \\ \, 5 \, 0\end{array}$

Then, we multiply 5 and 4and add the 2 that was carried

$\begin{array}{r}\overset{2 \space{\ }}{\ 4} \space{\,}5\\ \times \phantom{0} 5\space{\,}4 \\ \hline \phantom{\,}1\,8\,0 \\ \, 2 \, 2 \, 5 \, 0\end{array}$

Finally, we add the two products together to find our final answer

$\begin{array}{r}\overset{2 \space{\ }}{\ 4} \space{\,}5\\ \times \phantom{0} 5\space{\,}4 \\ \hline \phantom{\,}1\,8\,0 \\+\, 2 \, 2 \, 5 \, 0\\ \hline 2\, 4 \, 3\, 0\end{array}$

Report an Error

Example Question #369 : Numbers And Operations

Solve:

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}1\\ \times\phantom{0}1\space{\,}2 \\ \hline \phantom{\,}\end{array}$

Possible Answers:

982

962

972

9720

Correct answer:

972

Explanation:

In order to solve this problem using multiplication, we must multiply each digit of the multiplier by each digit of the multiplicand to get the answer, which is called the product.

$\frac{\begin{array}[b]{r}\textup{multiplicand}\\ \times\ \ \ \ \textup{multiplier}\end{array}}{\ \ \ \ \textup{product}}$

For this problem, 12 is the multiplier and 81 is the multiplicand. We start with the multiplier, and multiply the digit in the ones place by each digit of the multiplicand.

First, we multiply 2 and 1

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}1\\ \times \phantom{0} 1\space{\,}2 \\ \hline \phantom{\,} \,2\end{array}$

Then, we multiply 2 and 8

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}1\\ \times \phantom{0} 1\space{\,}2 \\ \hline \phantom{\,}1\,6\,2\end{array}$

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}1\\ \times \phantom{0} 1\space{\,}2 \\ \hline \phantom{\,}1\,6\,2 \\ \, 0 \end{array}$

Next, we multiply 1 and 1

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}1\\ \times \phantom{0} 1\space{\,}2 \\ \hline \phantom{\,}1\,6\,2 \\ \, 1 \, 0\end{array}$

Then, we multiply 1 and 8

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}1\\ \times \phantom{0} 1\space{\,}2 \\ \hline \phantom{\,}1\,6\,2 \\ \, 8 \, 1 \, 0\end{array}$

Finally, we add the two products together to find our final answer

$\begin{array}{r}\overset{~ \space{\ }}{\ 8} \space{\,}1\\ \times \phantom{0} 1\space{\,}2 \\ \hline \phantom{\,}1\,6\,2 \\+\, 8 \, 1 \, 0\\ \hline 9\, 7 \, 2\end{array}$

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All ISEE Middle Level Quantitative Resources

6 Diagnostic Tests 110 Practice Tests Question of the Day Flashcards Learn by Concept

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ISEE Middle Level Quantitative : Numbers and Operations

Study concepts, example questions & explanations for ISEE Middle Level Quantitative

All ISEE Middle Level Quantitative Resources

Example Questions

Example Question #557 : Number & Operations In Base Ten

Example Question #34 : Fluently Multiply Multi Digit Whole Numbers: Ccss.Math.Content.5.Nbt.B.5

Example Question #35 : Fluently Multiply Multi Digit Whole Numbers: Ccss.Math.Content.5.Nbt.B.5

Example Question #363 : Numbers And Operations

Example Question #364 : Numbers And Operations

Example Question #365 : Numbers And Operations

Example Question #366 : Numbers And Operations

Example Question #367 : Numbers And Operations

Example Question #368 : Numbers And Operations

Example Question #369 : Numbers And Operations

All ISEE Middle Level Quantitative Resources

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