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    Giving the Right Way ... Eco Friendly Gifts
    Imagine how it would do your heart good when not only do you experience the joy of giving but also of helping the environment. Eco friendly gifts are gifts that focus on the environment and fairly traded products.People are always looking for that perfect gift to give someone; birthdays, weddings and births just to mention a few. Most of the focus is put on either how expensive the gift is or for the great deal we got on it. For children we want to buy the hottest new toys and teens need all the top electronic devices. Rarely do the questions where was this product made, who made it or how was it produced cross our minds when we are shopping.This is where the importance of Eco friendly gifts comes into play. In this day and age where we are fighting to save our planet, the where, who and how needs to become a priority when buying products. Shopping needs to be more focused on the actual services and less on the product itself. Not buying the cheapest gift but one that contributes to the health of our environment and that has contributed to the increase in fair trade products.So now you might ask exactly what are Eco friendly gifts and how do I purchase them? There are a wide variety of gifts available that falls under this category: purses, bags, clothing, hemp products, novelties, lamps, gift baskets and soaps. The list is too long to name them all, these are but a few examples. Many produ
    ny, and were growing next fastest. And the countries with the maximum investment were the U.S., Canada and U.K., all of which were doing very badly at the time."

    The Economist concurs: "it is hard for governments to pick winners in technology." Innovation and science sprout in - or migrate to - locations with tough laws regarding intellectual property rights, a functioning financial system, a culture of "thinking outside the box" and a tradition of excellence.

    Government can only remove obstacles - especially red tape and trade tariffs - and nudge things in the right direction by investing in infrastructure and institutions. Tax incentives are essential initially. But if the authorities meddle, they are bound to ruin science and be rued by scientists.

    Still, all forms of science funding - both public and private - are lacking.

    State largesse is ideologically constrained, oft-misallocated, inefficient and erratic. In the United States, mega projects, such as the Superconducting Super Collider, with billions already sunk in, have been abruptly discontinued as were numerous other defense-related schemes. Additionally, some knowledge gleaned in government-funded research is barred from the public domain.

    But industrial money can be worse. It comes with strings attached. The commercially detrimental results of drug studies have been suppressed by corporate donors on more than one occasion, for instance. Commercial entities are unlikely to support basic research as a public good, ultimately made available to their competitors as a "spillover benefit". This understandable reluctance stifles innovation.

    There is no lack of suggestions on how to square this circle.

    Quoted in the

    How to Write an Email Campaign That Sells I
    It is not easy to learn how to write an email campaign and this is where most newbies to internet marketing fall down. There are certain techniques that have to be learned, and never try to run a campaign without an autoresponder. In fact, an autoresponder is so important in internet marketing, that I am going to assume that everybody interested in learning about email campaigns has one.A targeted email campaign can generate sales for you that you would not have had without it. In addition to an autoresponder you need an emailing list, and one that has been generated by your own website provides significantly better results than a purchased list that probably has little to do with your website. Although these lists are said to be targeted to a particular niche, that niche tends to be broad, such as ‘health’.What proportion of a list of email health addresses do you think would be interested in flexibility training or a specific supplement. How many ‘sports’ fans really want information on the latest circular golf trainer? It’s hard enough trying to sell to a targeted list without having to bother with a random one. So get going with your opt-in or squeeze pages and build your own list. You will benefit from it in the end.Before you start writing give some thought to your send date. The worst time to send emails is at the weekend because that is when everybody likes to send them. Yours coul
    In the United States, Congress approved, last month, increases in the 2003 budgets of both the National Institutes of Health and National Science Foundation. America is not alone in - vainly - trying to compensate for imploding capital markets and risk-averse financiers.

    In 1999, chancellor Gordon Brown inaugurated a $1.6 billion program of "upgrading British science" and commercializing its products. This was on top of $1 billion invested between 1998-2002. The budgets of the Medical Research Council and the Biotechnology and Biological Sciences Research Council were quadrupled overnight.

    The University Challenge Fund was set to provide $100 million in seed money to cover costs related to the hiring of managerial skills, securing intellectual property, constructing a prototype or preparing a business plan. Another $30 million went to start-up funding of high-tech, high-risk companies in the UK.

    According to the United Nations Development Programme (UNDP), the top 29 industrialized nations invest in R&D more than $600 billion a year. The bulk of this capital is provided by the private sector. In the United Kingdom, for instance, government funds are dwarfed by private financing, according to the British Venture Capital Association. More than $80 billion have been ploughed into 23,000 companies since 1983, about half of them in the hi-tech sector. Three million people are employed in these firms. Investments surged by 36 percent in 2001 to $18 billion.

    But this British exuberance is a global exception.

    Even the - white hot - life sciences field suffered an 11 percent drop in venture capital investments last year, reports the MoneyTree Survey. According to the Ernst & Young 2002 Alberta Technology Report released on Wednesday, the Canadian hi-tech sector is languishing with less than $3 billion invested in 2002 in seed capital - this despite generous matching funds and tax credits proffered by many of the provinces as well as the federal government.

    In Israel, venture capital plunged to $600 million last year - one fifth its level in 2000. Aware of this cataclysmic reversal in investor sentiment, the Israeli government set up 24 hi-tech incubators. But these are able merely to partly cater to the pecuniary needs of less than 20 percent of the projects submitted.

    As governments pick up the monumental slack created by the withdrawal of private funding, they attempt to rationalize and economize.

    The New Jersey Commission of Health Science Education and Training recently proposed to merge the state's three public research universities. Soaring federal and state budget deficits are likely to exert added pressure on the already strained relationship between academe and state - especially with regards to research priorities and the allocation of ever-scarcer resources.

    This friction is inevitable because the interaction between technology and science is complex and ill-understood. Some technological advances spawn new scientific fields - the steel industry gave birth to metallurgy, computers to computer science and the transistor to solid state physics. The discoveries of science also lead, though usually circuitously, to technological breakthroughs - consider the examples of semiconductors and biotechnology.

    Thus, it is safe to generalize and say that the technology sector is only the more visible and alluring tip of the drabber iceberg of research and development. The military, universities, institutes and industry all over the world plough hundreds of billions annually into both basic and applied studies. But governments are the most important sponsors of pure scientific pursuits by a long shot.

    Science is widely perceived as a public good - its benefits are shared. Rational individuals would do well to sit back and copy the outcomes of research - rather than produce widely replicated discoveries themselves. The government has to step in to provide them with incentives to innovate.

    Thus, in the minds of most laymen and many economists, science is associated exclusively with publicly-funded universities and the defense establishment. Inventions such as the jet aircraft and the Internet are often touted as examples of the civilian benefits of publicly funded military research. The pharmaceutical, biomedical, information technology and space industries, for instance - though largely private - rely heavily on the fruits of nonrivalrous (i.e. public domain) science sponsored by the state.

    The majority of 501 corporations surveyed by the Department of Finance and Revenue Canada in 1995-6 reported that government funding improved their internal cash flow - an important consideration in the decision to undertake research and development. Most beneficiaries claimed the tax incentives for seven years and recorded employment growth.

    In the absence of efficient capital markets and adventuresome capitalists, some developing countries have taken this propensity to extremes. In the Philippines, close to 100 percent of all R&D is government-financed. The meltdown of foreign direct investment flows - they declined by nearly three fifths since 2000 - only rendered state involvement more indispensable.

    But this is not a universal trend. South Korea, for instance, effected a successful transition to private venture capital which now - even after the Asian turmoil of 1997 and the global downturn of 2001 - amounts to four fifths of all spending on R&D.

    Thus, supporting ubiquitous government entanglement in science is overdoing it. Most applied R&D is still conducted by privately owned industrial outfits. Even "pure" science - unadulterated by greed and commerce - is sometimes bankrolled by private endowments and foundations.

    Moreover, the conduits of government involvement in research, the universities, are only weakly correlated with growing prosperity. As Alison Wolf, professor of education at the University of London elucidates in her seminal tome "Does Education Matter? Myths about Education and Economic Growth", published last year, extra years of schooling and wider access to university do not necessarily translate to enhanced growth (though technological innovation clearly does).

    Terence Kealey, a clinical biochemist, vice-chancellor of the University of Buckingham in England and author of "The Economic Laws of Scientific Research", is one of a growing band of scholars who dispute the intuitive linkage between state-propped science and economic progress. In an interview published last week by Scientific American, he recounted how he discovered that:

    "Of all the lead industrial countries, Japan - the country investing least in science - was growing fastest. Japanese science grew spectacularly under laissez-faire. Its science was actually purer than that of the U.K. or the U.S. The countries with the next least investment were France and Germany, and were growing next fastest. And the countries with the maximum investment were the U.S., Canada and U.K., all of which were doing very badly at the time."

    The Economist concurs: "it is hard for governments to pick winners in technology." Innovation and science sprout in - or migrate to - locations with tough laws regarding intellectual property rights, a functioning financial system, a culture of "thinking outside the box" and a tradition of excellence.

    Government can only remove obstacles - especially red tape and trade tariffs - and nudge things in the right direction by investing in infrastructure and institutions. Tax incentives are essential initially. But if the authorities meddle, they are bound to ruin science and be rued by scientists.

    Still, all forms of science funding - both public and private - are lacking.

    State largesse is ideologically constrained, oft-misallocated, inefficient and erratic. In the United States, mega projects, such as the Superconducting Super Collider, with billions already sunk in, have been abruptly discontinued as were numerous other defense-related schemes. Additionally, some knowledge gleaned in government-funded research is barred from the public domain.

    But industrial money can be worse. It comes with strings attached. The commercially detrimental results of drug studies have been suppressed by corporate donors on more than one occasion, for instance. Commercial entities are unlikely to support basic research as a public good, ultimately made available to their competitors as a "spillover benefit". This understandable reluctance stifles innovation.

    There is no lack of suggestions on how to square this circle.

    Quoted in the P

    Prepaid Global Roaming Sim Card
    In order to understand, let us look into the GSM classifications very briefly.Global System for Mobile Communications (GSM), is a world leading standard, first adopted in Europe and then spread through Asia, Africa and Australia, New Zealand, etc. GSM coverage maps are available for nearly all courtiers. It is a digital technology and uses Time Division Multiplexing methods in communication. There are three categories of GSM phones that are available:The dual band GSM phones operate on 900MHz or 1800MHz. These phones will not work with the service providers operating on 850MHz.The tri-band phones have operating frequencies of 900MHz, 1800MHz and 1900MHz bands. These phones will work around the world including North America, but will not work in places where the service providers support only 850MHz.The quad band phones, on the other hand, operates on 850MHz, 900MHz, 1800MHz, and 1900MHZ and therefore would work every where around the world with all the service providers.Therefore, for your international travel, it is necessary that your GSM mobile is a quad band handset for it to work world-wide. Or else, it should atleast support tri-band frequency ranges. If you do not own such a phone, you can always rent one for your travel abroad. Please visit www.planetomni.com/RENT_INFO.shtml for more details.A pre-paid SIM card activates your GSM mobile, without you having to enter into a
    ta Technology Report released on Wednesday, the Canadian hi-tech sector is languishing with less than $3 billion invested in 2002 in seed capital - this despite generous matching funds and tax credits proffered by many of the provinces as well as the federal government.

    In Israel, venture capital plunged to $600 million last year - one fifth its level in 2000. Aware of this cataclysmic reversal in investor sentiment, the Israeli government set up 24 hi-tech incubators. But these are able merely to partly cater to the pecuniary needs of less than 20 percent of the projects submitted.

    As governments pick up the monumental slack created by the withdrawal of private funding, they attempt to rationalize and economize.

    The New Jersey Commission of Health Science Education and Training recently proposed to merge the state's three public research universities. Soaring federal and state budget deficits are likely to exert added pressure on the already strained relationship between academe and state - especially with regards to research priorities and the allocation of ever-scarcer resources.

    This friction is inevitable because the interaction between technology and science is complex and ill-understood. Some technological advances spawn new scientific fields - the steel industry gave birth to metallurgy, computers to computer science and the transistor to solid state physics. The discoveries of science also lead, though usually circuitously, to technological breakthroughs - consider the examples of semiconductors and biotechnology.

    Thus, it is safe to generalize and say that the technology sector is only the more visible and alluring tip of the drabber iceberg of research and development. The military, universities, institutes and industry all over the world plough hundreds of billions annually into both basic and applied studies. But governments are the most important sponsors of pure scientific pursuits by a long shot.

    Science is widely perceived as a public good - its benefits are shared. Rational individuals would do well to sit back and copy the outcomes of research - rather than produce widely replicated discoveries themselves. The government has to step in to provide them with incentives to innovate.

    Thus, in the minds of most laymen and many economists, science is associated exclusively with publicly-funded universities and the defense establishment. Inventions such as the jet aircraft and the Internet are often touted as examples of the civilian benefits of publicly funded military research. The pharmaceutical, biomedical, information technology and space industries, for instance - though largely private - rely heavily on the fruits of nonrivalrous (i.e. public domain) science sponsored by the state.

    The majority of 501 corporations surveyed by the Department of Finance and Revenue Canada in 1995-6 reported that government funding improved their internal cash flow - an important consideration in the decision to undertake research and development. Most beneficiaries claimed the tax incentives for seven years and recorded employment growth.

    In the absence of efficient capital markets and adventuresome capitalists, some developing countries have taken this propensity to extremes. In the Philippines, close to 100 percent of all R&D is government-financed. The meltdown of foreign direct investment flows - they declined by nearly three fifths since 2000 - only rendered state involvement more indispensable.

    But this is not a universal trend. South Korea, for instance, effected a successful transition to private venture capital which now - even after the Asian turmoil of 1997 and the global downturn of 2001 - amounts to four fifths of all spending on R&D.

    Thus, supporting ubiquitous government entanglement in science is overdoing it. Most applied R&D is still conducted by privately owned industrial outfits. Even "pure" science - unadulterated by greed and commerce - is sometimes bankrolled by private endowments and foundations.

    Moreover, the conduits of government involvement in research, the universities, are only weakly correlated with growing prosperity. As Alison Wolf, professor of education at the University of London elucidates in her seminal tome "Does Education Matter? Myths about Education and Economic Growth", published last year, extra years of schooling and wider access to university do not necessarily translate to enhanced growth (though technological innovation clearly does).

    Terence Kealey, a clinical biochemist, vice-chancellor of the University of Buckingham in England and author of "The Economic Laws of Scientific Research", is one of a growing band of scholars who dispute the intuitive linkage between state-propped science and economic progress. In an interview published last week by Scientific American, he recounted how he discovered that:

    "Of all the lead industrial countries, Japan - the country investing least in science - was growing fastest. Japanese science grew spectacularly under laissez-faire. Its science was actually purer than that of the U.K. or the U.S. The countries with the next least investment were France and Germany, and were growing next fastest. And the countries with the maximum investment were the U.S., Canada and U.K., all of which were doing very badly at the time."

    The Economist concurs: "it is hard for governments to pick winners in technology." Innovation and science sprout in - or migrate to - locations with tough laws regarding intellectual property rights, a functioning financial system, a culture of "thinking outside the box" and a tradition of excellence.

    Government can only remove obstacles - especially red tape and trade tariffs - and nudge things in the right direction by investing in infrastructure and institutions. Tax incentives are essential initially. But if the authorities meddle, they are bound to ruin science and be rued by scientists.

    Still, all forms of science funding - both public and private - are lacking.

    State largesse is ideologically constrained, oft-misallocated, inefficient and erratic. In the United States, mega projects, such as the Superconducting Super Collider, with billions already sunk in, have been abruptly discontinued as were numerous other defense-related schemes. Additionally, some knowledge gleaned in government-funded research is barred from the public domain.

    But industrial money can be worse. It comes with strings attached. The commercially detrimental results of drug studies have been suppressed by corporate donors on more than one occasion, for instance. Commercial entities are unlikely to support basic research as a public good, ultimately made available to their competitors as a "spillover benefit". This understandable reluctance stifles innovation.

    There is no lack of suggestions on how to square this circle.

    Quoted in the

    Training / Presentations: The Crucial Components of a Lesson Plan
    MAKING INFORMATIVE LESSON PLANS: --The performance objectives should answer this very basic question — what should the trainees be able to do at the end of the training period that they were was not able to do at the beginning of it? --For evaluation procedures, how will the trainee’s accomplishment of performance objectives be demonstrated or measured (written test, skill test, skill demonstration)? Evaluation procedures should provide documentation of the achievement of all performance objectives. --For equipment and supplies needed, what is available? What must be used? What cannot be used? What unusual items will be needed? Any special student materials? Instructor materials? Handouts? Lesson plan for the students? Manuals? Visual Aids? Props? --When entering space requirements calculate room size, number of rooms, seating requirements, seating arrangement, writing surface needs, and any special training environment needs.PERFORMANCE OBJECTIVES: The cover sheet or legend for the lesson plan should include perofrmance objectives. Any statement comprehensively describing the intended outcome and instructional intent should include the following: --a description of intended outcome in terms of student performance --a statement of what learners must be able to do or perform when they demonstrate mastery of the objective --a description of relevant or important conditions under which the performance is expected to
    e military, universities, institutes and industry all over the world plough hundreds of billions annually into both basic and applied studies. But governments are the most important sponsors of pure scientific pursuits by a long shot.

    Science is widely perceived as a public good - its benefits are shared. Rational individuals would do well to sit back and copy the outcomes of research - rather than produce widely replicated discoveries themselves. The government has to step in to provide them with incentives to innovate.

    Thus, in the minds of most laymen and many economists, science is associated exclusively with publicly-funded universities and the defense establishment. Inventions such as the jet aircraft and the Internet are often touted as examples of the civilian benefits of publicly funded military research. The pharmaceutical, biomedical, information technology and space industries, for instance - though largely private - rely heavily on the fruits of nonrivalrous (i.e. public domain) science sponsored by the state.

    The majority of 501 corporations surveyed by the Department of Finance and Revenue Canada in 1995-6 reported that government funding improved their internal cash flow - an important consideration in the decision to undertake research and development. Most beneficiaries claimed the tax incentives for seven years and recorded employment growth.

    In the absence of efficient capital markets and adventuresome capitalists, some developing countries have taken this propensity to extremes. In the Philippines, close to 100 percent of all R&D is government-financed. The meltdown of foreign direct investment flows - they declined by nearly three fifths since 2000 - only rendered state involvement more indispensable.

    But this is not a universal trend. South Korea, for instance, effected a successful transition to private venture capital which now - even after the Asian turmoil of 1997 and the global downturn of 2001 - amounts to four fifths of all spending on R&D.

    Thus, supporting ubiquitous government entanglement in science is overdoing it. Most applied R&D is still conducted by privately owned industrial outfits. Even "pure" science - unadulterated by greed and commerce - is sometimes bankrolled by private endowments and foundations.

    Moreover, the conduits of government involvement in research, the universities, are only weakly correlated with growing prosperity. As Alison Wolf, professor of education at the University of London elucidates in her seminal tome "Does Education Matter? Myths about Education and Economic Growth", published last year, extra years of schooling and wider access to university do not necessarily translate to enhanced growth (though technological innovation clearly does).

    Terence Kealey, a clinical biochemist, vice-chancellor of the University of Buckingham in England and author of "The Economic Laws of Scientific Research", is one of a growing band of scholars who dispute the intuitive linkage between state-propped science and economic progress. In an interview published last week by Scientific American, he recounted how he discovered that:

    "Of all the lead industrial countries, Japan - the country investing least in science - was growing fastest. Japanese science grew spectacularly under laissez-faire. Its science was actually purer than that of the U.K. or the U.S. The countries with the next least investment were France and Germany, and were growing next fastest. And the countries with the maximum investment were the U.S., Canada and U.K., all of which were doing very badly at the time."

    The Economist concurs: "it is hard for governments to pick winners in technology." Innovation and science sprout in - or migrate to - locations with tough laws regarding intellectual property rights, a functioning financial system, a culture of "thinking outside the box" and a tradition of excellence.

    Government can only remove obstacles - especially red tape and trade tariffs - and nudge things in the right direction by investing in infrastructure and institutions. Tax incentives are essential initially. But if the authorities meddle, they are bound to ruin science and be rued by scientists.

    Still, all forms of science funding - both public and private - are lacking.

    State largesse is ideologically constrained, oft-misallocated, inefficient and erratic. In the United States, mega projects, such as the Superconducting Super Collider, with billions already sunk in, have been abruptly discontinued as were numerous other defense-related schemes. Additionally, some knowledge gleaned in government-funded research is barred from the public domain.

    But industrial money can be worse. It comes with strings attached. The commercially detrimental results of drug studies have been suppressed by corporate donors on more than one occasion, for instance. Commercial entities are unlikely to support basic research as a public good, ultimately made available to their competitors as a "spillover benefit". This understandable reluctance stifles innovation.

    There is no lack of suggestions on how to square this circle.

    Quoted in the

    List Building - Effective Techniques for a Happy and Profitable List
    Do you believe that profit is in the list? Not quite. It should be on a good list! Yes, you can drive good money with a good list. So getting a big size of a list that is really responsive will bring you to a result that you won’t resist.So here are the effective techniques that would give you a happy and definitely profitable list.1. You see it’s a fact that people would not sign up without anything in return. So it is better to give them free ebook, report, software or anything that is free. That is more convincing than telling them that they would just receive a newsletter.2. To keep your members on the list, do not flood them with newsletters. Once or twice a week would be a good start. You will need to balance things here.3. You should also think about what information you would send to your list. Remember that if you put so many information on your email, you might end up getting no profit at all since these members find buying your product useless since they have everything in your newsletter. You should also consider that if you put little information, they might unsubscribe since your email is futile. So balancing the information is the secret.4. And lastly, provide an easy way on how to unsubscribe to your list. Yes, if you want to maintain a responsive list, you should make it easy for the members to unsubscribe. You might end up as a spammer and get a bad reputation if your
    ate involvement more indispensable.

    But this is not a universal trend. South Korea, for instance, effected a successful transition to private venture capital which now - even after the Asian turmoil of 1997 and the global downturn of 2001 - amounts to four fifths of all spending on R&D.

    Thus, supporting ubiquitous government entanglement in science is overdoing it. Most applied R&D is still conducted by privately owned industrial outfits. Even "pure" science - unadulterated by greed and commerce - is sometimes bankrolled by private endowments and foundations.

    Moreover, the conduits of government involvement in research, the universities, are only weakly correlated with growing prosperity. As Alison Wolf, professor of education at the University of London elucidates in her seminal tome "Does Education Matter? Myths about Education and Economic Growth", published last year, extra years of schooling and wider access to university do not necessarily translate to enhanced growth (though technological innovation clearly does).

    Terence Kealey, a clinical biochemist, vice-chancellor of the University of Buckingham in England and author of "The Economic Laws of Scientific Research", is one of a growing band of scholars who dispute the intuitive linkage between state-propped science and economic progress. In an interview published last week by Scientific American, he recounted how he discovered that:

    "Of all the lead industrial countries, Japan - the country investing least in science - was growing fastest. Japanese science grew spectacularly under laissez-faire. Its science was actually purer than that of the U.K. or the U.S. The countries with the next least investment were France and Germany, and were growing next fastest. And the countries with the maximum investment were the U.S., Canada and U.K., all of which were doing very badly at the time."

    The Economist concurs: "it is hard for governments to pick winners in technology." Innovation and science sprout in - or migrate to - locations with tough laws regarding intellectual property rights, a functioning financial system, a culture of "thinking outside the box" and a tradition of excellence.

    Government can only remove obstacles - especially red tape and trade tariffs - and nudge things in the right direction by investing in infrastructure and institutions. Tax incentives are essential initially. But if the authorities meddle, they are bound to ruin science and be rued by scientists.

    Still, all forms of science funding - both public and private - are lacking.

    State largesse is ideologically constrained, oft-misallocated, inefficient and erratic. In the United States, mega projects, such as the Superconducting Super Collider, with billions already sunk in, have been abruptly discontinued as were numerous other defense-related schemes. Additionally, some knowledge gleaned in government-funded research is barred from the public domain.

    But industrial money can be worse. It comes with strings attached. The commercially detrimental results of drug studies have been suppressed by corporate donors on more than one occasion, for instance. Commercial entities are unlikely to support basic research as a public good, ultimately made available to their competitors as a "spillover benefit". This understandable reluctance stifles innovation.

    There is no lack of suggestions on how to square this circle.

    Quoted in the

    Online Home Mortgage - Lock in Low Rates
    I heard someone discussing online home mortgages the other day. Talking about various companies and rates and who would be around for the long haul. Well, I can't say which companies will eventually dominate the internet. Perhaps, no one company can dominate a market and medium as large as the internet. There is one thing that I know for sure, online home mortgages along with other financial markets and the internet will forever more be partners.It only makes sense, the internet is the perfect medium for such a business. The customers, benefit because of the ability to shop and pull in offers at the spend of light. You can receive your offers from any where in the world. If a bank in London can present you a better than the one in your home town then you will get your online home mortgage through them. There are a few laws that are currently in the way of worldwide lending, but in the near future these walls will probably come down.The banks and lenders are also in a much better position. Doing business over the internet is much cheaper than with a traditional brick and mortar bank. In most cases their is also less personnel required to operate. This lower overhead allows banks to be more competitive and still increase the bottom line. The combination of better customer satisfaction combined with a profitable business model for the lenders has assured the future of online home mortgaging.Online home
    ny, and were growing next fastest. And the countries with the maximum investment were the U.S., Canada and U.K., all of which were doing very badly at the time."

    The Economist concurs: "it is hard for governments to pick winners in technology." Innovation and science sprout in - or migrate to - locations with tough laws regarding intellectual property rights, a functioning financial system, a culture of "thinking outside the box" and a tradition of excellence.

    Government can only remove obstacles - especially red tape and trade tariffs - and nudge things in the right direction by investing in infrastructure and institutions. Tax incentives are essential initially. But if the authorities meddle, they are bound to ruin science and be rued by scientists.

    Still, all forms of science funding - both public and private - are lacking.

    State largesse is ideologically constrained, oft-misallocated, inefficient and erratic. In the United States, mega projects, such as the Superconducting Super Collider, with billions already sunk in, have been abruptly discontinued as were numerous other defense-related schemes. Additionally, some knowledge gleaned in government-funded research is barred from the public domain.

    But industrial money can be worse. It comes with strings attached. The commercially detrimental results of drug studies have been suppressed by corporate donors on more than one occasion, for instance. Commercial entities are unlikely to support basic research as a public good, ultimately made available to their competitors as a "spillover benefit". This understandable reluctance stifles innovation.

    There is no lack of suggestions on how to square this circle.

    Quoted in the Philadelphia Business Journal, Donald Drakeman, CEO of the Princeton biotech company Medarex, proposed last month to encourage pharmaceutical companies to shed technologies they have chosen to shelve: "Just like you see little companies coming out of the research being conducted at Harvard and MIT in Massachusetts and Stanford and Berkley in California, we could do it out of Johnson & Johnson and Merck."

    This would be the corporate equivalent of the Bayh-Dole Act of 1980. The statute made both academic institutions and researchers the owners of inventions or discoveries financed by government agencies. This unleashed a wave of unprecedented self-financing entrepreneurship.

    In the two decades that followed, the number of patents registered to universities increased tenfold and they spun off more than 2200 firms to commercialize the fruits of research. In the process, they generated $40 billion in gross national product and created 260,000 jobs.

    None of this was government financed - though, according to The Economist's Technology Quarterly, $1 in research usually requires up to $10,000 in capital to get to market. This suggests a clear and mutually profitable division of labor - governments should picks up the tab for basic research, private capital should do the rest, stimulated by the transfer of intellectual property from state to entrepreneurs.

    But this raises a host of contentious issues.

    Such a scheme may condition industry to depend on the state for advances in pure science, as a kind of hidden subsidy. Research priorities are bound to be politicized and lead to massive misallocation of scarce economic resources through pork barrel politics and the imposition of "national goals". NASA, with its "let's put a man on the moon (before the Soviets do)" and the inane International Space Station is a sad manifestation of such dangers.

    Science is the only public good that is produced by individuals rather than collectives. This inner conflict is difficult to resolve. On the one hand, why should the public purse enrich entrepreneurs? On the other hand, profit-driven investors seek temporary monopolies in the form of intellectual property rights. Why would they share this cornucopia with others, as pure scientists are compelled to do?

    The partnership between basic research and applied science has always been an uneasy one. It has grown more so as monetary returns on scientific insight have soared and as capital available for commercialization multiplied. The future of science itself is at stake.

    Were governments to exit the field, basic research would likely crumble. Were they to micromanage it - applied science and entrepreneurship would suffer. It is a fine balancing act and, judging by the state of both universities and startups, a precarious one as well.

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