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add/change examples
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a30ba84691
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@ -1,13 +1,10 @@
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total := 0.0
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{() -> {
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("Total: ", total, ". Type a number to change.").concat.println
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(
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().read_line.trim.parse_float,
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(
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n -> &total = (total, n).sum,
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// not a number, so return a 1-tuple to break from the loop
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() -> (())
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)
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).try
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().read_line.trim.parse_float.try((
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n -> &total = (total, n).sum,
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// not a number, so return a 1-tuple to break from the loop
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() -> (())
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))
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}}.loop
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"Goodbye.".println
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@ -8,23 +8,20 @@ current := 0.0
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{() -> {
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("[ ", current, " ]").concat.println
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input := ().read_line.trim
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num := (
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(input, 1).substring.trim.parse_float,
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(
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() -> 0.0,
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val -> val
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)
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).try
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mode := (input, 0, 1).substring
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if (mode, "+").eq {
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num := (input, 1).substring.trim.parse_float.try((
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() -> 0.0,
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val -> val
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))
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mode := input.substring(0, 1)
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if mode.eq("+") {
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¤t = (current, num).sum
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} else if (mode, "-").eq {
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} else if mode.eq("-") {
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¤t = (current, (num, -1).product).sum
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} else if (mode, "*").eq {
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} else if mode.eq("*") {
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¤t = (current, num).product
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} else if (mode, "=").eq {
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} else if mode.eq("=") {
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¤t = num
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} else if (input, "exit").eq {
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} else if input.eq("exit") {
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(())
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}
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}}.loop
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@ -1,12 +1,12 @@
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gcd := vals -> {
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() -> {
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(a, b) := vals
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if (a, b).eq
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if a.eq(b)
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(a)
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else if ((a, b).diff.signum, 1).eq
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&vals = (a, (a, b).diff)
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else if a.diff(b).signum.eq(1)
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&vals = (a, a.diff(b))
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else
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&vals = ((b, a).diff, b)
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&vals = (b.diff(a), b)
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}
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}.loop
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168
examples/05_Matrix_Multiplicator.mers
Normal file
168
examples/05_Matrix_Multiplicator.mers
Normal file
@ -0,0 +1,168 @@
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// if string is a + delim + b, returns (a, b),
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// otherwise returns (). b can contain delim.
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split_once := (s, delim) -> {
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(
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(s, delim).index_of,
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(
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index -> (
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(s, 0, index).substring,
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(s, (index, delim.len).sum).substring
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)
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() -> ()
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)
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).try
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}
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// repeats split_once until no delim is left and returns a list of strings
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split_ := (s, delim, require_nonempty) -> {
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out := (s).as_list
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&out.pop
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{
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() -> s.split_once(delim).try((
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(s1, s2) -> {
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&s = s2
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if s1.len.signum.eq(1)
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&out.push(s1)
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}
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() -> {
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if s.len.signum.eq(1)
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&out.push(s)
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(())
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}
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))
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}.loop
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out
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}
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split := (s, delim) -> s.split_(delim, true)
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parse_matrix_line := input -> {
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vals := input.split(" ")
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vals_len := vals.len
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// reverse vals
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vals_rev := {() -> &vals.pop}.as_list
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nums := {() -> &vals_rev.pop.try((
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() -> ()
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(v) -> v.parse_float.try((
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() -> ()
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v -> (v)
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))
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))}.as_list
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if nums.len.eq(vals_len)
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if nums.len.signum.eq(1)
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(nums)
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else ()
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else ()
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}
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read_matrix_line := width -> {
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().read_line.trim.parse_matrix_line.try((
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(line) -> {
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w := width.deref
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if w.eq(0) {
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width = line.len
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} else {
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{() -> if line.len.diff(w).signum.eq(1) {
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&line.push(0.0)
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} else (())}.loop
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}
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(line)
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}
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() -> ()
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))
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}
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read_matrix := () -> {
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width := 0
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{ () -> &width.read_matrix_line }.as_list
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}
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matrix_get := (matrix, (line, col)) -> {
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matrix.get(line).try((
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() -> ()
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(line) -> line.get(col)
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))
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}
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leftpad := (str, l) -> {
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str := (str).concat
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d := str.len.diff(l)
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{() -> if d.signum.eq(1) {
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&str = (" ", str).concat
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&d = 1.diff(d)
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} else {(())}}.loop
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str
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}
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matrix_print := matrix -> {
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height := matrix.len
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width := 0
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val_len := 0
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matrix.for_each(line -> {
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l := line.len
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if l.diff(width).signum.eq(-1)
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&width = l
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line.for_each(val -> {
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l := (val).concat.len
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if l.diff(val_len).eq(-1)
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&val_len = l
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})
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})
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&val_len = val_len.sum(1)
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(height, "x", width, "-matrix").concat.println
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matrix.for_each(line -> {
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"(".print
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line.for_each(val -> val.leftpad(val_len).print)
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" )".println
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})
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}
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fget := v -> v.get.try((
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() -> {
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"called fget but get returned ():".println
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v.println
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5.panic
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}
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(v) -> v
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))
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matrix_height := a -> a.len
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matrix_width := a -> a.get(0).try((
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() -> 0
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(v) -> v.len
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))
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multiply_matrix := (a, b) -> {
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if a.matrix_width.eq(b.matrix_height) {
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a.map(line -> {
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{() -> (())} // an infinite iterator repeatedly returning ()
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.enumerate // an infinite iterator returning (i, ())
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.take(b.matrix_width) // an iterator returning (i, ()), i < b.matrix_width
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.map((x, ()) -> line
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.enumerate
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.map((y, val) -> val.product(b.fget(y).fget(x)))
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.sum
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) // an iterator returning floats
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.as_list // becomes a row in the output matrix
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}).as_list
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} else {
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"cannot multiply A and B because A's width isn't B's height."
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}
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}
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"Enter matrix A".println
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a := ().read_matrix
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"Enter matrix B".println
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b := ().read_matrix
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"A = ".print
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a.matrix_print
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"B = ".print
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b.matrix_print
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"A * B = ".print
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a.multiply_matrix(b).try((
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m -> m.matrix_print
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e -> e.println
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))
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