JayKimDevolved/deepseek

c011401 verified 11 months ago

23.8 kB

	"""Some simple financial calculations

	patterned after spreadsheet computations.

	There is some complexity in each function
	so that the functions behave like ufuncs with
	broadcasting and being able to be called with scalars
	or arrays (or other sequences).

	"""
	from __future__ import division, absolute_import, print_function

	import numpy as np

	__all__ = ['fv', 'pmt', 'nper', 'ipmt', 'ppmt', 'pv', 'rate',
	'irr', 'npv', 'mirr']

	_when_to_num = {'end':0, 'begin':1,
	'e':0, 'b':1,
	0:0, 1:1,
	'beginning':1,
	'start':1,
	'finish':0}

	def _convert_when(when):
	#Test to see if when has already been converted to ndarray
	#This will happen if one function calls another, for example ppmt
	if isinstance(when, np.ndarray):
	return when
	try:
	return _when_to_num[when]
	except (KeyError, TypeError):
	return [_when_to_num[x] for x in when]


	def fv(rate, nper, pmt, pv, when='end'):
	"""
	Compute the future value.

	Given:
	* a present value, `pv`
	* an interest `rate` compounded once per period, of which
	there are
	* `nper` total
	* a (fixed) payment, `pmt`, paid either
	* at the beginning (`when` = {'begin', 1}) or the end
	(`when` = {'end', 0}) of each period

	Return:
	the value at the end of the `nper` periods

	Parameters
	----------
	rate : scalar or array_like of shape(M, )
	Rate of interest as decimal (not per cent) per period
	nper : scalar or array_like of shape(M, )
	Number of compounding periods
	pmt : scalar or array_like of shape(M, )
	Payment
	pv : scalar or array_like of shape(M, )
	Present value
	when : {{'begin', 1}, {'end', 0}}, {string, int}, optional
	When payments are due ('begin' (1) or 'end' (0)).
	Defaults to {'end', 0}.

	Returns
	-------
	out : ndarray
	Future values. If all input is scalar, returns a scalar float. If
	any input is array_like, returns future values for each input element.
	If multiple inputs are array_like, they all must have the same shape.

	Notes
	-----
	The future value is computed by solving the equation::

	fv +
	pv(1+rate)*nper +
	pmt(1 + ratewhen)/rate((1 + rate)*nper - 1) == 0

	or, when ``rate == 0``::

	fv + pv + pmt * nper == 0

	References
	----------
	.. [WRW] Wheeler, D. A., E. Rathke, and R. Weir (Eds.) (2009, May).
	Open Document Format for Office Applications (OpenDocument)v1.2,
	Part 2: Recalculated Formula (OpenFormula) Format - Annotated Version,
	Pre-Draft 12. Organization for the Advancement of Structured Information
	Standards (OASIS). Billerica, MA, USA. [ODT Document].
	Available:
	http://www.oasis-open.org/committees/documents.php?wg_abbrev=office-formula
	OpenDocument-formula-20090508.odt

	Examples
	--------
	What is the future value after 10 years of saving $100 now, with
	an additional monthly savings of $100. Assume the interest rate is
	5% (annually) compounded monthly?

	>>> np.fv(0.05/12, 10*12, -100, -100)
	15692.928894335748

	By convention, the negative sign represents cash flow out (i.e. money not
	available today). Thus, saving $100 a month at 5% annual interest leads
	to $15,692.93 available to spend in 10 years.

	If any input is array_like, returns an array of equal shape. Let's
	compare different interest rates from the example above.

	>>> a = np.array((0.05, 0.06, 0.07))/12
	>>> np.fv(a, 10*12, -100, -100)
	array([ 15692.92889434, 16569.87435405, 17509.44688102])

	"""
	when = _convert_when(when)
	(rate, nper, pmt, pv, when) = map(np.asarray, [rate, nper, pmt, pv, when])
	temp = (1+rate)**nper
	miter = np.broadcast(rate, nper, pmt, pv, when)
	zer = np.zeros(miter.shape)
	fact = np.where(rate == zer, nper + zer,
	(1 + ratewhen)(temp - 1)/rate + zer)
	return -(pvtemp + pmtfact)

	def pmt(rate, nper, pv, fv=0, when='end'):
	"""
	Compute the payment against loan principal plus interest.

	Given:
	* a present value, `pv` (e.g., an amount borrowed)
	* a future value, `fv` (e.g., 0)
	* an interest `rate` compounded once per period, of which
	there are
	* `nper` total
	* and (optional) specification of whether payment is made
	at the beginning (`when` = {'begin', 1}) or the end
	(`when` = {'end', 0}) of each period

	Return:
	the (fixed) periodic payment.

	Parameters
	----------
	rate : array_like
	Rate of interest (per period)
	nper : array_like
	Number of compounding periods
	pv : array_like
	Present value
	fv : array_like (optional)
	Future value (default = 0)
	when : {{'begin', 1}, {'end', 0}}, {string, int}
	When payments are due ('begin' (1) or 'end' (0))

	Returns
	-------
	out : ndarray
	Payment against loan plus interest. If all input is scalar, returns a
	scalar float. If any input is array_like, returns payment for each
	input element. If multiple inputs are array_like, they all must have
	the same shape.

	Notes
	-----
	The payment is computed by solving the equation::

	fv +
	pv(1 + rate)*nper +
	pmt(1 + ratewhen)/rate((1 + rate)*nper - 1) == 0

	or, when ``rate == 0``::

	fv + pv + pmt * nper == 0

	for ``pmt``.

	Note that computing a monthly mortgage payment is only
	one use for this function. For example, pmt returns the
	periodic deposit one must make to achieve a specified
	future balance given an initial deposit, a fixed,
	periodically compounded interest rate, and the total
	number of periods.

	References
	----------
	.. [WRW] Wheeler, D. A., E. Rathke, and R. Weir (Eds.) (2009, May).
	Open Document Format for Office Applications (OpenDocument)v1.2,
	Part 2: Recalculated Formula (OpenFormula) Format - Annotated Version,
	Pre-Draft 12. Organization for the Advancement of Structured Information
	Standards (OASIS). Billerica, MA, USA. [ODT Document].
	Available:
	http://www.oasis-open.org/committees/documents.php
	?wg_abbrev=office-formulaOpenDocument-formula-20090508.odt

	Examples
	--------
	What is the monthly payment needed to pay off a $200,000 loan in 15
	years at an annual interest rate of 7.5%?

	>>> np.pmt(0.075/12, 12*15, 200000)
	-1854.0247200054619

	In order to pay-off (i.e., have a future-value of 0) the $200,000 obtained
	today, a monthly payment of $1,854.02 would be required. Note that this
	example illustrates usage of `fv` having a default value of 0.

	"""
	when = _convert_when(when)
	(rate, nper, pv, fv, when) = map(np.asarray, [rate, nper, pv, fv, when])
	temp = (1+rate)**nper
	miter = np.broadcast(rate, nper, pv, fv, when)
	zer = np.zeros(miter.shape)
	fact = np.where(rate == zer, nper + zer,
	(1 + ratewhen)(temp - 1)/rate + zer)
	return -(fv + pv*temp) / fact

	def nper(rate, pmt, pv, fv=0, when='end'):
	"""
	Compute the number of periodic payments.

	Parameters
	----------
	rate : array_like
	Rate of interest (per period)
	pmt : array_like
	Payment
	pv : array_like
	Present value
	fv : array_like, optional
	Future value
	when : {{'begin', 1}, {'end', 0}}, {string, int}, optional
	When payments are due ('begin' (1) or 'end' (0))

	Notes
	-----
	The number of periods ``nper`` is computed by solving the equation::

	fv + pv(1+rate)nper + pmt(1+ratewhen)/rate((1+rate)**nper-1) = 0

	but if ``rate = 0`` then::

	fv + pv + pmt*nper = 0

	Examples
	--------
	If you only had $150/month to pay towards the loan, how long would it take
	to pay-off a loan of $8,000 at 7% annual interest?

	>>> print round(np.nper(0.07/12, -150, 8000), 5)
	64.07335

	So, over 64 months would be required to pay off the loan.

	The same analysis could be done with several different interest rates
	and/or payments and/or total amounts to produce an entire table.

	>>> np.nper(*(np.ogrid[0.07/12: 0.08/12: 0.01/12,
	... -150 : -99 : 50 ,
	... 8000 : 9001 : 1000]))
	array([[[ 64.07334877, 74.06368256],
	[ 108.07548412, 127.99022654]],
	[[ 66.12443902, 76.87897353],
	[ 114.70165583, 137.90124779]]])

	"""
	when = _convert_when(when)
	(rate, pmt, pv, fv, when) = map(np.asarray, [rate, pmt, pv, fv, when])

	use_zero_rate = False
	with np.errstate(divide="raise"):
	try:
	z = pmt(1.0+ratewhen)/rate
	except FloatingPointError:
	use_zero_rate = True

	if use_zero_rate:
	return (-fv + pv) / (pmt + 0.0)
	else:
	A = -(fv + pv)/(pmt+0.0)
	B = np.log((-fv+z) / (pv+z))/np.log(1.0+rate)
	miter = np.broadcast(rate, pmt, pv, fv, when)
	zer = np.zeros(miter.shape)
	return np.where(rate == zer, A + zer, B + zer) + 0.0

	def ipmt(rate, per, nper, pv, fv=0.0, when='end'):
	"""
	Compute the interest portion of a payment.

	Parameters
	----------
	rate : scalar or array_like of shape(M, )
	Rate of interest as decimal (not per cent) per period
	per : scalar or array_like of shape(M, )
	Interest paid against the loan changes during the life or the loan.
	The `per` is the payment period to calculate the interest amount.
	nper : scalar or array_like of shape(M, )
	Number of compounding periods
	pv : scalar or array_like of shape(M, )
	Present value
	fv : scalar or array_like of shape(M, ), optional
	Future value
	when : {{'begin', 1}, {'end', 0}}, {string, int}, optional
	When payments are due ('begin' (1) or 'end' (0)).
	Defaults to {'end', 0}.

	Returns
	-------
	out : ndarray
	Interest portion of payment. If all input is scalar, returns a scalar
	float. If any input is array_like, returns interest payment for each
	input element. If multiple inputs are array_like, they all must have
	the same shape.

	See Also
	--------
	ppmt, pmt, pv

	Notes
	-----
	The total payment is made up of payment against principal plus interest.

	``pmt = ppmt + ipmt``

	Examples
	--------
	What is the amortization schedule for a 1 year loan of $2500 at
	8.24% interest per year compounded monthly?

	>>> principal = 2500.00

	The 'per' variable represents the periods of the loan. Remember that
	financial equations start the period count at 1!

	>>> per = np.arange(1*12) + 1
	>>> ipmt = np.ipmt(0.0824/12, per, 1*12, principal)
	>>> ppmt = np.ppmt(0.0824/12, per, 1*12, principal)

	Each element of the sum of the 'ipmt' and 'ppmt' arrays should equal
	'pmt'.

	>>> pmt = np.pmt(0.0824/12, 1*12, principal)
	>>> np.allclose(ipmt + ppmt, pmt)
	True

	>>> fmt = '{0:2d} {1:8.2f} {2:8.2f} {3:8.2f}'
	>>> for payment in per:
	... index = payment - 1
	... principal = principal + ppmt[index]
	... print fmt.format(payment, ppmt[index], ipmt[index], principal)
	1 -200.58 -17.17 2299.42
	2 -201.96 -15.79 2097.46
	3 -203.35 -14.40 1894.11
	4 -204.74 -13.01 1689.37
	5 -206.15 -11.60 1483.22
	6 -207.56 -10.18 1275.66
	7 -208.99 -8.76 1066.67
	8 -210.42 -7.32 856.25
	9 -211.87 -5.88 644.38
	10 -213.32 -4.42 431.05
	11 -214.79 -2.96 216.26
	12 -216.26 -1.49 -0.00

	>>> interestpd = np.sum(ipmt)
	>>> np.round(interestpd, 2)
	-112.98

	"""
	when = _convert_when(when)
	rate, per, nper, pv, fv, when = np.broadcast_arrays(rate, per, nper,
	pv, fv, when)
	total_pmt = pmt(rate, nper, pv, fv, when)
	ipmt = _rbl(rate, per, total_pmt, pv, when)*rate
	try:
	ipmt = np.where(when == 1, ipmt/(1 + rate), ipmt)
	ipmt = np.where(np.logical_and(when == 1, per == 1), 0.0, ipmt)
	except IndexError:
	pass
	return ipmt

	def _rbl(rate, per, pmt, pv, when):
	"""
	This function is here to simply have a different name for the 'fv'
	function to not interfere with the 'fv' keyword argument within the 'ipmt'
	function. It is the 'remaining balance on loan' which might be useful as
	it's own function, but is easily calculated with the 'fv' function.
	"""
	return fv(rate, (per - 1), pmt, pv, when)

	def ppmt(rate, per, nper, pv, fv=0.0, when='end'):
	"""
	Compute the payment against loan principal.

	Parameters
	----------
	rate : array_like
	Rate of interest (per period)
	per : array_like, int
	Amount paid against the loan changes. The `per` is the period of
	interest.
	nper : array_like
	Number of compounding periods
	pv : array_like
	Present value
	fv : array_like, optional
	Future value
	when : {{'begin', 1}, {'end', 0}}, {string, int}
	When payments are due ('begin' (1) or 'end' (0))

	See Also
	--------
	pmt, pv, ipmt

	"""
	total = pmt(rate, nper, pv, fv, when)
	return total - ipmt(rate, per, nper, pv, fv, when)

	def pv(rate, nper, pmt, fv=0.0, when='end'):
	"""
	Compute the present value.

	Given:
	* a future value, `fv`
	* an interest `rate` compounded once per period, of which
	there are
	* `nper` total
	* a (fixed) payment, `pmt`, paid either
	* at the beginning (`when` = {'begin', 1}) or the end
	(`when` = {'end', 0}) of each period

	Return:
	the value now

	Parameters
	----------
	rate : array_like
	Rate of interest (per period)
	nper : array_like
	Number of compounding periods
	pmt : array_like
	Payment
	fv : array_like, optional
	Future value
	when : {{'begin', 1}, {'end', 0}}, {string, int}, optional
	When payments are due ('begin' (1) or 'end' (0))

	Returns
	-------
	out : ndarray, float
	Present value of a series of payments or investments.

	Notes
	-----
	The present value is computed by solving the equation::

	fv +
	pv(1 + rate)*nper +
	pmt(1 + ratewhen)/rate((1 + rate)*nper - 1) = 0

	or, when ``rate = 0``::

	fv + pv + pmt * nper = 0

	for `pv`, which is then returned.

	References
	----------
	.. [WRW] Wheeler, D. A., E. Rathke, and R. Weir (Eds.) (2009, May).
	Open Document Format for Office Applications (OpenDocument)v1.2,
	Part 2: Recalculated Formula (OpenFormula) Format - Annotated Version,
	Pre-Draft 12. Organization for the Advancement of Structured Information
	Standards (OASIS). Billerica, MA, USA. [ODT Document].
	Available:
	http://www.oasis-open.org/committees/documents.php?wg_abbrev=office-formula
	OpenDocument-formula-20090508.odt

	Examples
	--------
	What is the present value (e.g., the initial investment)
	of an investment that needs to total $15692.93
	after 10 years of saving $100 every month? Assume the
	interest rate is 5% (annually) compounded monthly.

	>>> np.pv(0.05/12, 10*12, -100, 15692.93)
	-100.00067131625819

	By convention, the negative sign represents cash flow out
	(i.e., money not available today). Thus, to end up with
	$15,692.93 in 10 years saving $100 a month at 5% annual
	interest, one's initial deposit should also be $100.

	If any input is array_like, ``pv`` returns an array of equal shape.
	Let's compare different interest rates in the example above:

	>>> a = np.array((0.05, 0.04, 0.03))/12
	>>> np.pv(a, 10*12, -100, 15692.93)
	array([ -100.00067132, -649.26771385, -1273.78633713])

	So, to end up with the same $15692.93 under the same $100 per month
	"savings plan," for annual interest rates of 4% and 3%, one would
	need initial investments of $649.27 and $1273.79, respectively.

	"""
	when = _convert_when(when)
	(rate, nper, pmt, fv, when) = map(np.asarray, [rate, nper, pmt, fv, when])
	temp = (1+rate)**nper
	miter = np.broadcast(rate, nper, pmt, fv, when)
	zer = np.zeros(miter.shape)
	fact = np.where(rate == zer, nper+zer, (1+ratewhen)(temp-1)/rate+zer)
	return -(fv + pmt*fact)/temp

	# Computed with Sage
	# (y + (r + 1)^nx + p((r + 1)^n - 1)(rw + 1)/r)/(n(r + 1)^(n - 1)x -
	# p((r + 1)^n - 1)(rw + 1)/r^2 + np(r + 1)^(n - 1)(r*w + 1)/r +
	# p((r + 1)^n - 1)w/r)

	def _g_div_gp(r, n, p, x, y, w):
	t1 = (r+1)**n
	t2 = (r+1)**(n-1)
	return ((y + t1x + p(t1 - 1)(rw + 1)/r) /
	(nt2x - p(t1 - 1)(rw + 1)/(r2) + npt2(r*w + 1)/r +
	p(t1 - 1)w/r))

	# Use Newton's iteration until the change is less than 1e-6
	# for all values or a maximum of 100 iterations is reached.
	# Newton's rule is
	# r_{n+1} = r_{n} - g(r_n)/g'(r_n)
	# where
	# g(r) is the formula
	# g'(r) is the derivative with respect to r.
	def rate(nper, pmt, pv, fv, when='end', guess=0.10, tol=1e-6, maxiter=100):
	"""
	Compute the rate of interest per period.

	Parameters
	----------
	nper : array_like
	Number of compounding periods
	pmt : array_like
	Payment
	pv : array_like
	Present value
	fv : array_like
	Future value
	when : {{'begin', 1}, {'end', 0}}, {string, int}, optional
	When payments are due ('begin' (1) or 'end' (0))
	guess : float, optional
	Starting guess for solving the rate of interest
	tol : float, optional
	Required tolerance for the solution
	maxiter : int, optional
	Maximum iterations in finding the solution

	Notes
	-----
	The rate of interest is computed by iteratively solving the
	(non-linear) equation::

	fv + pv(1+rate)nper + pmt(1+ratewhen)/rate ((1+rate)**nper - 1) = 0

	for ``rate``.

	References
	----------
	Wheeler, D. A., E. Rathke, and R. Weir (Eds.) (2009, May). Open Document
	Format for Office Applications (OpenDocument)v1.2, Part 2: Recalculated
	Formula (OpenFormula) Format - Annotated Version, Pre-Draft 12.
	Organization for the Advancement of Structured Information Standards
	(OASIS). Billerica, MA, USA. [ODT Document]. Available:
	http://www.oasis-open.org/committees/documents.php?wg_abbrev=office-formula
	OpenDocument-formula-20090508.odt

	"""
	when = _convert_when(when)
	(nper, pmt, pv, fv, when) = map(np.asarray, [nper, pmt, pv, fv, when])
	rn = guess
	iter = 0
	close = False
	while (iter < maxiter) and not close:
	rnp1 = rn - _g_div_gp(rn, nper, pmt, pv, fv, when)
	diff = abs(rnp1-rn)
	close = np.all(diff < tol)
	iter += 1
	rn = rnp1
	if not close:
	# Return nan's in array of the same shape as rn
	return np.nan + rn
	else:
	return rn

	def irr(values):
	"""
	Return the Internal Rate of Return (IRR).

	This is the "average" periodically compounded rate of return
	that gives a net present value of 0.0; for a more complete explanation,
	see Notes below.

	Parameters
	----------
	values : array_like, shape(N,)
	Input cash flows per time period. By convention, net "deposits"
	are negative and net "withdrawals" are positive. Thus, for
	example, at least the first element of `values`, which represents
	the initial investment, will typically be negative.

	Returns
	-------
	out : float
	Internal Rate of Return for periodic input values.

	Notes
	-----
	The IRR is perhaps best understood through an example (illustrated
	using np.irr in the Examples section below). Suppose one invests 100
	units and then makes the following withdrawals at regular (fixed)
	intervals: 39, 59, 55, 20. Assuming the ending value is 0, one's 100
	unit investment yields 173 units; however, due to the combination of
	compounding and the periodic withdrawals, the "average" rate of return
	is neither simply 0.73/4 nor (1.73)^0.25-1. Rather, it is the solution
	(for :math:`r`) of the equation:

	.. math:: -100 + \\frac{39}{1+r} + \\frac{59}{(1+r)^2}
	+ \\frac{55}{(1+r)^3} + \\frac{20}{(1+r)^4} = 0

	In general, for `values` :math:`= [v_0, v_1, ... v_M]`,
	irr is the solution of the equation: [G]_

	.. math:: \\sum_{t=0}^M{\\frac{v_t}{(1+irr)^{t}}} = 0

	References
	----------
	.. [G] L. J. Gitman, "Principles of Managerial Finance, Brief," 3rd ed.,
	Addison-Wesley, 2003, pg. 348.

	Examples
	--------
	>>> round(irr([-100, 39, 59, 55, 20]), 5)
	0.28095
	>>> round(irr([-100, 0, 0, 74]), 5)
	-0.0955
	>>> round(irr([-100, 100, 0, -7]), 5)
	-0.0833
	>>> round(irr([-100, 100, 0, 7]), 5)
	0.06206
	>>> round(irr([-5, 10.5, 1, -8, 1]), 5)
	0.0886

	(Compare with the Example given for numpy.lib.financial.npv)

	"""
	res = np.roots(values[::-1])
	mask = (res.imag == 0) & (res.real > 0)
	if res.size == 0:
	return np.nan
	res = res[mask].real
	# NPV(rate) = 0 can have more than one solution so we return
	# only the solution closest to zero.
	rate = 1.0/res - 1
	rate = rate.item(np.argmin(np.abs(rate)))
	return rate

	def npv(rate, values):
	"""
	Returns the NPV (Net Present Value) of a cash flow series.

	Parameters
	----------
	rate : scalar
	The discount rate.
	values : array_like, shape(M, )
	The values of the time series of cash flows. The (fixed) time
	interval between cash flow "events" must be the same as that for
	which `rate` is given (i.e., if `rate` is per year, then precisely
	a year is understood to elapse between each cash flow event). By
	convention, investments or "deposits" are negative, income or
	"withdrawals" are positive; `values` must begin with the initial
	investment, thus `values[0]` will typically be negative.

	Returns
	-------
	out : float
	The NPV of the input cash flow series `values` at the discount
	`rate`.

	Notes
	-----
	Returns the result of: [G]_

	.. math :: \\sum_{t=0}^{M-1}{\\frac{values_t}{(1+rate)^{t}}}

	References
	----------
	.. [G] L. J. Gitman, "Principles of Managerial Finance, Brief," 3rd ed.,
	Addison-Wesley, 2003, pg. 346.

	Examples
	--------
	>>> np.npv(0.281,[-100, 39, 59, 55, 20])
	-0.0084785916384548798

	(Compare with the Example given for numpy.lib.financial.irr)

	"""
	values = np.asarray(values)
	return (values / (1+rate)**np.arange(0, len(values))).sum(axis=0)

	def mirr(values, finance_rate, reinvest_rate):
	"""
	Modified internal rate of return.

	Parameters
	----------
	values : array_like
	Cash flows (must contain at least one positive and one negative
	value) or nan is returned. The first value is considered a sunk
	cost at time zero.
	finance_rate : scalar
	Interest rate paid on the cash flows
	reinvest_rate : scalar
	Interest rate received on the cash flows upon reinvestment

	Returns
	-------
	out : float
	Modified internal rate of return

	"""
	values = np.asarray(values, dtype=np.double)
	n = values.size
	pos = values > 0
	neg = values < 0
	if not (pos.any() and neg.any()):
	return np.nan
	numer = np.abs(npv(reinvest_rate, values*pos))
	denom = np.abs(npv(finance_rate, values*neg))
	return (numer/denom)*(1.0/(n - 1))(1 + reinvest_rate) - 1